Coupa PO email ingestion pipeline
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feat: Python derived-field classifier with shadow telemetry (PO PR 2) (#106)
* feat: Python derived-field classifier with shadow telemetry for PO ingest

Port the site_code/trade/fiscal_year rules from EXTRACTION_PROMPT into a
pure, total derived_fields module applied in the shared enrich_parsed()
post-stage. Python fills gaps on both parse paths (the template path has
no LLM values, closing the derived-field gap opened by the PR #105
two-PR split) and never overwrites a non-null LLM value; on ai_fallback
a DerivedFieldAgreement EMF record per field shadows Python against the
LLM during the bake. Rules hardened against a full-corpus backtest
(3,422 real emails vs the LLM-written baseline): site_code 99.4% with
zero Python-wrong cases, fiscal_year 100%, trade 96.8% ex-deliberate.
Also: quantity/price now declared numeric in the prompt, and
derived_fields.py added to the po_stack bundling copy (deploy-time
ImportError otherwise).

* fix: security-review hardening — EMF value length clamp, aggregate trade CPU budget

sh-security-review (4 detectors + proof-or-kill verifier): PASS, 0
confirmed critical/high. Fixes the one confirmed low (unbounded
LLM-value str() into the DerivedFieldAgreement EMF log line, clamped to
64 chars) and adds the verifier-recommended defense-in-depth aggregate
character budget across line items in derive_trade (per-item caps alone
allowed ~10s full-core on a pathological direct-call input; unreachable
through the deployed handler but cheap to bound). Bundling cp list now
carries a warning comment (GPT-4.1 cross-review FIX).
2026-07-17 11:47:33 -04:00
.github Add pytest suite and enable tests in CI (#95) 2026-07-15 19:06:20 -04:00
cdk feat: Python derived-field classifier with shadow telemetry (PO PR 2) (#106) 2026-07-17 11:47:33 -04:00
docs feat: Python derived-field classifier with shadow telemetry (PO PR 2) (#106) 2026-07-17 11:47:33 -04:00
lambdas feat: Python derived-field classifier with shadow telemetry (PO PR 2) (#106) 2026-07-17 11:47:33 -04:00
scripts feat: template-first WO parser + Bedrock fallback, PO Bedrock switch (#99) 2026-07-16 12:45:11 -04:00
tests feat: Python derived-field classifier with shadow telemetry (PO PR 2) (#106) 2026-07-17 11:47:33 -04:00
.gitignore feat: template-first PO parser with fail-closed gate and Bedrock fallback (#105) 2026-07-16 17:50:59 -04:00
pytest.ini feat: template-first PO parser with fail-closed gate and Bedrock fallback (#105) 2026-07-16 17:50:59 -04:00
README.md feat: Python derived-field classifier with shadow telemetry (PO PR 2) (#106) 2026-07-17 11:47:33 -04:00
test_local.py feat: template-first WO parser + Bedrock fallback, PO Bedrock switch (#99) 2026-07-16 12:45:11 -04:00

Procurement Ingest

Python AWS CDK CI

Unified email ingestion pipelines for Amazon procurement data. Two independent pipelines — purchase orders (Coupa) and work orders (APM/Hexagon EAM) — share a single repo and CDK app but deploy as separate CloudFormation stacks.

Pipelines

Purchase Orders (po-ingest stack)

Coupa PO emails are received at amazon_po@int.seahaven.com, parsed deterministic-template-first with a Claude-Haiku-4.5-on-Bedrock fallback, and written to the purchase-orders DynamoDB table.

Flow:

  1. Coupa sends a PO email (new, revision, or cancellation).
  2. SES (INBOUND_MAIL rule set) drops the raw MIME into s3://po-ingest-emails-{AccountId}/inbound/.
  3. S3 ObjectCreated triggers the po-email-processor Lambda.
  4. Fail-closed sender authentication (INFRA-107): the SES-stamped Authentication-Results header must show dkim=pass for amazon.coupahost.com (see Sender authentication); otherwise the email is logged and dropped.
  5. Parse: a pure, offline template parser (template_parser.py) tries the two known Coupa templates first — coupa_new_po (95.5% of traffic) and coupa_cancellation (2.9%) — behind a strict fail-closed validation gate. Only on a miss/invalid result does the Lambda fall back to the Claude-on-Bedrock AI extractor (InvokeModel), which extracts the identical structured-JSON contract (PO number, status, supplier, nested ship-to, line items). Numeric amounts are Decimal on both paths (the AI decode uses parse_float=Decimal; DynamoDB rejects floats). The derived classification fields (site_code, trade, fiscal_year) are computed by a deterministic Python classifier in the shared enrich_parsed() post-stage (zip padding, ship_to_raw/state promotion, metadata) which runs identically on both paths — Python-authoritative on the template path and an LLM-authoritative-with-Python-shadow bake on the AI-fallback path (see the Derived fields note below).
  6. Merge write to DynamoDB:
    • new_po — merge insert. Creates the PO, or backfills data into a pre-existing Cancelled skeleton left by an out-of-order cancellation (preserving the Cancelled status). No longer silently dropped when a record already exists.
    • revision — field-level merge (update_item SETs only the fields present in the revision). A revision that omits line_items/supplier no longer deletes them. Will not un-cancel a Cancelled PO.
    • cancellation — marks the row Cancelled (creating a minimal skeleton if the cancellation arrives before the new_po).
  7. DynamoDB Streams feeds downstream consumers:
    • LedgerFlow (seahaven-slack-bot/po-sync) — daily KB sync
    • Site extractor (po-ingest-site-extractor) — real-time site address extraction into verified-sites table

Deterministic template parser. template_parser.try_deterministic_parse() classifies by exact subject regex, extracts the nested contract (supplier{}, ship_to{} — 8 keys, line_items[] — 10 keys per item), and returns a parsed result only if it passes a fail-closed validation gate: recursive exact key-set at every nesting level; email_type emitted only on the exact new-PO subject and a confirmed-safe Status (never defaulted — a cancellation misrouted as new_po would defeat the sticky-Cancelled guard); po_number shape + byte-equality with the subject, the body PO ID, the Amazon Purchase Order # heading, and the orders/<id> URL; duplicate-label anchor integrity (Supplier/Shipping/Total each appear twice, the first Shipping must be the literal None placeholder); money fidelity (every Decimal re-serializes byte-identically to its source token with a digit/comma border check — the thousands-separator-truncation kill switch — plus sum(line amounts) == total, proven against both Total blocks); bullet-metadata label discipline (closed label set, assigned by leading label, never ordinal — immune to the optional Part Number segment); USPS address shape on the raw pre-enrichment value; and rejection of any unparseable sentinel or residual \r/\xa0 artifact. Multi-line-item (0.18%) and non-USD (0 observed) new-POs, comment emails, and anything else falls back to the AI extractor. Data is never corrupted; only the fallback rate rises. Every record emits one CloudWatch EMF metric (see below).

Derived fields (site_code, trade, fiscal_year). These three are classified, not verbatim-extracted, so neither parse path emits them directly — instead a deterministic Python classifier (derived_fields.derive_all()) computes them inside the shared enrich_parsed() post-stage, which runs identically on both paths. trade is a closed label set (the same one the AI prompt enumerates): Plumbing - PM, Plumbing - Reactive, Electrical, HVAC, Dock Doors, Doors, Signage, Carpentry, Fencing/Gates, Conveyance/MHE, Painting, Flooring, Janitorial, Fire/Life Safety, Landscaping/Yard, Roofing, Security/Locksmith, Snow Removal, PO Uplift, General Building - Emergency, General Building - Handyman, General Building - Project, General Building. Authority differs by path:

  • Template path — the parser leaves all three null, so Python is authoritative: it fills them.
  • AI-fallback path — the LLM value stays authoritative during the bake (Python fills only a gap the LLM left null, never overwrites), and Python additionally runs in shadow mode: enrich_parsed() emits one DerivedFieldAgreement EMF record per field comparing the two.

DerivedFieldAgreement metric — namespace Seahaven/PoIngest, metric name DerivedFieldAgreement (Unit Count, value 1), dimensioned only by Field × Agreement (cardinality fixed at 3 × 4). Agreement ∈ {agree (both non-null, equal after str-strip), disagree (both non-null, different), llm_null_python_filled (LLM null, Python supplied a value), python_null (LLM non-null, Python null)}; the record is skipped entirely when both are null. po_number, PythonValue, and LlmValue ride along as non-dimensioned Logs-Insights properties so a disagreement can be reviewed by example without inflating cardinality. Only the AI-fallback path emits these — the template path has no LLM value to shadow.

Review disagreements during the bake with this CloudWatch Logs Insights query over /aws/lambda/po-email-processor:

fields @timestamp, Field, Agreement, LlmValue, PythonValue, po_number
| filter ispresent(DerivedFieldAgreement)
| filter Agreement = "disagree"
| sort @timestamp desc
| limit 200

Or aggregate overall agreement per field: | filter ispresent(DerivedFieldAgreement) | stats count(*) by Field, Agreement.

Post-bake follow-up: once agreement is acceptable, make Python authoritative on the AI-fallback path too (stop keeping the LLM value) and drop the site_code/trade/fiscal_year rule sections from EXTRACTION_PROMPT — the LLM stays authoritative on the fallback path only until then.

Lambdas (lambdas/po/):

Function Trigger Purpose
po-email-processor S3 ObjectCreated Claude extraction + DynamoDB write
po-ingest-site-extractor DynamoDB Streams Site code/address extraction -> verified-sites
po-web-ui Manual invoke HTML dashboard (public Function URL removed 2026-06-08, INFRA-74)

Tables:

  • purchase-orders (PK: po_number, Streams: NEW_IMAGE) — shared with seahaven-slack-bot (read-only; see Shared Resources)
  • verified-sites (PK: siteCode) — ~1,100 unique Amazon facility sites (by-state GSI removed 2026-06-03, audit M-20)
  • pending-site-review (PK: po_number) — unresolvable POs for manual Payee Central verification

Work Orders (WorkorderIngestStack stack)

Amazon APM work order emails (from Hexagon EAM / HxGN SmartCloud) are received at apm@int.seahaven.com, parsed deterministic-template-first with a Claude-on-Bedrock fallback, and written to the WorkOrders DynamoDB table.

Flow:

  1. Hexagon EAM sends email notifications (new assignments, comments, updates, cancellations) to amazon@seahavenind.com.
  2. Gmail filter forwards APM emails to apm@int.seahaven.com (SES).
  3. SES drops the raw MIME into s3://workorder-ingest-emails-{AccountId}/inbound/.
  4. S3 triggers the workorder-email-processor Lambda.
  5. Fail-closed sender authentication (INFRA-107): the SES-stamped Authentication-Results header must show dkim=pass for the domain that re-signs the forward (currently allowlisted as seahaven.com — see the validation caveat under Sender authentication); otherwise the email is logged and dropped.
  6. Parse: a pure, offline template parser (template_parser.py) tries the two known Hexagon templates first, behind a strict fail-closed validation gate. Only on a miss/invalid result does the Lambda fall back to the Claude-on-Bedrock AI extractor. Both paths emit the identical structured-JSON contract (work order ID, site code, severity, priority, dates, assigned technician).
  7. Work order upserted to WorkOrders, event/comment appended to WorkOrderComments.

Deterministic template parser. ~93.6% of WO traffic is the plain-text "AMAZON UPDATE WO DETAILS <id>" comment template (T1) and ~6.4% is the HTML "AMAZON assign Work Order <id> on building <SITE>" assignment template (T2). template_parser.try_deterministic_parse() classifies by subject, extracts the contract fields, and returns a parsed result only if it passes a strict validation gate (exact contract-key set; work_order_id matches the subject and is all-digits; the T1 Work Order: <id> double-space is literally present; email_type matches the template; site_code shape; per-type required fields; and a label-bleed guard so a value that over-ran into another field fails). Anything that fails — the rare update/cancellation shapes, Hexagon template drift, or an extractor exception — falls back to the AI extractor. The AI path is gated too: the untrusted email reaches Bedrock inside a neutralized <email> data block (tag lookalikes in the body are defanged), and the raw model output must pass the fail-closed validate_ai_fallback() schema/enum/date gate before any DynamoDB write — output that fails is dropped and paged (see the ai-fallback-rejected alarm below), a prompt-injection defence for DKIM-passing but attacker-influenced mail. Data is never corrupted; only the fallback rate rises. Every record emits one CloudWatch EMF metric (see below).

Lambdas (lambdas/wo/):

Function Trigger Purpose
workorder-email-processor S3 ObjectCreated Claude extraction + DynamoDB write
workorder-web-ui Manual invoke HTML dashboard (public Function URL removed 2026-06-08, INFRA-74)

Tables:

  • WorkOrders (PK: work_order_id) — site-code-index and status-index GSIs removed 2026-06-03 (audit M-20)
  • WorkOrderComments (PK: work_order_id, SK: comment_id) — see the comment_id format note below

Architecture

IaC: AWS CDK (Python), two stacks in one app, region us-east-1.

All Lambdas: Python 3.12, ARM64, 60-day log retention.

LLM provider — Amazon Bedrock. Both email processors call Claude Haiku 4.5 through the Bedrock inference profile us.anthropic.claude-haiku-4-5-20251001-v1:0 (bedrock-runtime InvokeModel), configured via the BEDROCK_MODEL_ID env var. There is no Anthropic API key and no Secrets Manager secret any more. Each processor role is granted bedrock:InvokeModel + bedrock:InvokeModelWithResponseStream on both the inference-profile ARN and the per-region foundation-model ARNs for us-east-1 / us-east-2 / us-west-2 (empty-account foundation-model ARNs) — the us.* profile can route cross-region, so a profile-only grant would AccessDenied at runtime under load.

Retired secrets (manual cleanup outstanding): the former secrets po-ingest/anthropic-api-key and workorder-ingest/anthropic-api-key had RemovalPolicy.RETAIN, so removing them from the CDK stacks orphans them rather than deleting them. Delete both by hand post-deploy and revoke the stored keys at the provider. The processors no longer read any ANTHROPIC_API_KEY_SECRET_ARN — authentication to Bedrock is via the Lambda execution-role IAM grant, so there is no provider API key or Secrets Manager fetch on the parse path.

SES: Both stacks add rules to the shared INBOUND_MAIL receipt rule set on int.seahaven.com.

Sender authentication (INFRA-107)

The From header and any Authentication-Results header inside the raw MIME are attacker-forgeable, so neither is trusted. Instead, both email processors (lambdas/*/email_processor/ses_auth.py) authenticate the sender against the verdicts SES itself stamps at delivery time, failing closed:

  1. Take only the topmost Authentication-Results header (SES prepends its trace headers; any lower copies arrived inside the message and are ignored).
  2. Require its authserv-id to be amazonses.com.
  3. Require a dkim=pass clause whose header.d=/header.i= domain is in the pipeline's allowlist.

The allowlist is the ALLOWED_DKIM_DOMAINS Lambda environment variable (comma-separated, set per stack in CDK — no code change needed to adjust):

Pipeline ALLOWED_DKIM_DOMAINS Why
Work orders seahaven.com APM mail reaches apm@int.seahaven.com via a forward off amazon@seahavenind.com; the allowlist trusts the domain that re-signs DKIM on that forward (the original hxgnsmartcloud.com signature does not survive it). Validated against live SES-stamped headers (2026-07-16) — real APM deliveries carry dkim=pass header.i=@seahaven.com. Note a plain Gmail auto-forward re-signs under the sending Workspace domain (seahavenind.com / a *.gappssmtp.com key), not seahaven.com; only a Google Group (or Workspace routing) with "sign as seahaven.com" produces dkim=pass header.i=@seahaven.com. If the observed re-signing domain differs, update this value (do not widen it to a shared key like *.gappssmtp.com, which any Google customer's mail would pass). The workorder-email-processor-sender-auth-rejected alarm pages if this assumption is wrong instead of silently dropping every work order.
Purchase orders amazon.coupahost.com Coupa signs as amazon.coupahost.com. amazonses.com also passes but is deliberately not allowlisted — every SES customer's mail passes for it

Clause-injection hardening: SES echoes attacker-controlled SMTP-session tokens (envelope-from, helo, header.from) into its own Authentication-Results value, and an RFC 5321 quoted-local-part MAIL FROM may legally contain ; and spaces. The parser therefore tokenises comment- and quoted-string-aware (RFC 8601 / RFC 5322): CFWS comments (...) are stripped and clauses are split only on semicolons outside a quoted string, so a ; inside a quoted envelope-from= value can never be torn into a forged dkim=pass clause. The DKIM signer domain is read from header.d= when present (falling back to header.i=, taking the domain after the AUID's last top-level @ so a quoted local-part cannot smuggle an allowlisted domain). Two latent comment-parsing edge cases (early comment-close, no-separator-on-strip) are tracked as hardening follow-ups — see the SES-AR-01/02 issue; neither is reachable through SES's real header encoding today.

Risk acceptance — forwarder-domain binding (INFRA-107, accepted 2026-07-16): for work orders this control authenticates the domain that re-signs the apm@ forward (seahaven.com), not the Hexagon originator (hxgnsmartcloud.com, whose signature does not survive the forward). Its strength therefore rests on the apm@ Google Group's posting policy being restricted to trusted internal senders — that restriction is the load-bearing control and is accepted as documented risk. If the apm@ group is ever opened to external posting, this finding escalates to HIGH (anyone able to post to the group could inject a forged work order) and the correct fix is to bind acceptance to the originator via DMARC alignment rather than the forwarder's re-signature. The PO pipeline is unaffected — amazon.coupahost.com is an external domain an attacker cannot get SES to sign.

On any failure (env var unset, header missing/unparseable, verdict fail, unaligned domain) the processor logs a structured sender_auth_rejected warning with the reason and S3 key, skips the email, and returns normally — rejected mail never triggers Lambda retries or DLQ messages, but the <fn>-sender-auth-rejected CloudWatch alarm (see CloudWatch alarms) pages on a rejection spike so a drift-induced outage is not silent. Unit tests live in tests/test_ses_auth.py.

Failure handling (INFRA-41): Each email-processor is async-invoked (S3 → Lambda). Both have a CDK-managed SQS dead-letter queue (dead_letter_queue=, 14-day retention, SSL-enforced) so a failed parse is captured rather than silently dropped after Lambda's retries.

CloudWatch alarms

Every alarm is ALARM-only (no OK action), sends to the shared site-alerts SNS topic (imported once per stack via Topic.from_topic_arn), and uses TreatMissingData.NOT_BREACHING.

Lambda alarms (AWS/Lambda, FunctionName dimension):

Alarm Functions Metric / config
<fn>-errors po-email-processor, po-ingest-site-extractor, workorder-email-processor Errors Sum, 5 min, > 0, eval 1
<fn>-throttles po-email-processor, po-ingest-site-extractor, po-web-ui, workorder-email-processor Throttles Sum, 5 min, > 0, eval 1
<fn>-duration po-email-processor, po-ingest-site-extractor, po-web-ui (p99); workorder-email-processor (p95) Duration percentile, 5 min, >= 45000 ms (75% of the 60s timeout), eval 3 / datapoints 2
<fn>-sender-auth-rejected po-email-processor, workorder-email-processor Log-metric-filter count (namespace Seahaven/ProcurementIngest, default_value=0) on sender_auth_rejected warnings, Sum 5 min, >= 1, eval 3 / datapoints 2

The <fn>-sender-auth-rejected alarm closes the silent-drop gap in INFRA-107: a rejected email returns normally (no error, no retry, no DLQ message), so without a log-metric filter a signing-domain drift or a wrong allowlist would discard 100% of legitimate mail while every other alarm stayed green. It counts sender_auth_rejected warnings per 5-minute period (default_value=0 keeps the series continuous) and pages when 2 of the last 3 periods each see at least one rejection — a lone stray spoof probe to the internal ingest address self-clears, but a sustained false-reject storm pages within ~10–15 minutes even at low mail volume; the config is easy to tune in the CDK helper. (A residual gap remains for a very sparse total-reject outage — see the SES-AR-01/02 hardening issue.)

The <fn>-duration and <fn>-throttles alarms for po-email-processor and workorder-email-processor supersede the orphaned, CLI-created Lambda-Duration-* / Lambda-Throttles-* alarms (deleted post-deploy).

DLQ alarms (AWS/SQS): po-email-processor-dlq-messages and workorder-email-processor-dlq-messages fire when any message is visible on an email-processor DLQ (ApproximateNumberOfMessagesVisible Maximum, 5 min, > 0, eval 1) — a message there means an email was dropped after Lambda exhausted its async retries.

Parse-outcome metric + fallback-rate alarm (workorder-ingest): the WO processor writes one CloudWatch EMF line per email to namespace Seahaven/WorkorderIngest, metric ParseOutcome (Unit Count, value 1), dimensioned by ParseMethod (template | ai_fallback | ai_fallback_rejected) and TemplateId (update_plaintext | assign_html | unknown). ai_fallback_rejected counts AI-fallback output that failed the fail-closed validate_ai_fallback() gate (schema/enum/date contract on raw Bedrock output — prompt-injection defence) and was dropped without a DynamoDB write. Non-dimension EMF properties ReasonCode and work_order_id are queryable in Logs Insights but not promoted to metrics (kept low-cardinality). EMF is used instead of PutMetricData so there is no extra sync call / latency / IAM grant on the async hot path (the role already has logs:PutLogEvents). The alarm workorder-email-processor-template-fallback-rate fires when the AI-fallback share of parses — rejected fallback parses included, so a drift outage whose AI output also fails the gate cannot lower the observed rate while dropping mail — exceeds 15% sustained (a MathExpression with FILL(...,0) and a ≥10-sample volume floor over 15-minute periods, eval 3 / datapoints 2) — catching Hexagon template-drift coverage collapse while the volume floor + FILL prevent low-volume false pages / INSUFFICIENT_DATA. ALARM-only SnsAction to site-alerts, no OK action, NOT_BREACHING. The 15-minute period is a deliberate deviation from the 5-minute house style to accumulate a stable denominator at the low ~760/day volume. A second alarm, workorder-email-processor-ai-fallback-rejected, pages on the rejected series itself (≥1 rejection per 5-min period, 2 of the last 6 periods — the sender-auth-rejected sparse-arrival idiom) because a gate rejection drops mail without error/retry/DLQ and would otherwise be silent.

Parse-outcome metric + fallback-rate alarm (po-ingest): the PO processor emits the same EMF shape to namespace Seahaven/PoIngest, metric ParseOutcome, dimensioned by ParseMethod (template | ai_fallback) and TemplateId (coupa_new_po | coupa_cancellation | unknown), with ReasonCode (the fail-closed gate reason) and po_number as Logs-Insights ride-alongs. The alarm po-email-processor-template-fallback-rate is deliberately retuned for PO volume — do NOT copy the WO numbers: at ~57 emails/day a 15-minute period holds ~0.6 emails, so the WO ≥10-sample floor would never be met and the alarm would be structurally dead. Instead: 6-hour periods (~14.25 expected emails each), an IF((fb+tmpl)>=8, …) volume floor (at the floor a single fallback email is 12.5% < the threshold, so one email can never breach a datapoint; a breach needs ≥2 fallbacks in one window, or ≥3 at typical volume), threshold >20% (expected baseline fallback ≈1%: comments 0.55% + multi-line 0.18% + non-USD 0), eval 4 / datapoints 2 (a 24h span — isolated noise self-clears while total template drift at 100% fallback pages within ~12h). Sparse overnight/weekend windows below the floor evaluate to 0 (non-breaching by design; accepted trade: a Friday-evening drift may not page until weekend volume accrues). Same idiom otherwise: ALARM-only SnsAction to site-alerts, NOT_BREACHING, and no element-wise MAX in the math expression (the post-#102 rule — the IF floor guarantees the non-zero denominator).

DynamoDB alarms (AWS/DynamoDB): each owned table gets <table>-throttles (ThrottledRequests) and <table>-system-errors (SystemErrors). These metrics emit only at the TableName + Operation dimension set, so each alarm is a Sum math expression across the operations the table uses (Get/BatchGet/Query/Scan/Put/Update/Delete/BatchWrite). Tables covered: purchase-orders, verified-sites, pending-site-review (po-ingest); WorkOrders, WorkOrderComments (workorder-ingest).

Security

Web UI auth (defense-in-depth). The po-web-ui / workorder-web-ui handlers refuse unauthenticated requests even though their public Function URLs were removed (INFRA-74). Each requires a shared secret in the X-Auth-Token header (or Authorization: Bearer <token>), compared in constant time against the configured token. The handler fails closed if the token is unset or unreadable (denies all). The token lives in the Secrets Manager secret procurement-ingest/web-ui-auth-token; only its ARN is passed to the Lambda (WEB_UI_AUTH_TOKEN_SECRET_ARN), and the value is fetched at runtime — never embedded in the CloudFormation template or Lambda env vars. The fetched value is cached in the warm container with a short TTL (5 min) so a rotated secret propagates without waiting for the execution environment to recycle. This is a defense-in-depth floor for a detached URL, not primary auth.

Output escaping. All caller-influenced values (including prompt-injectable strings Claude may return for total_amount/line-item amounts) are HTML-escaped before interpolation to prevent stored XSS.

Shared Resources

purchase-orders table (owned here)

The purchase-orders DynamoDB table is owned by this repo's po-ingest stack (defined in cdk/po_stack.py with RemovalPolicy.RETAIN, StreamViewType.NEW_IMAGE, and SSE-KMS encryption with the shared customer-managed CMK alias/seahaven-dynamodb, INFRA-95 / M-3). The po-email-processor Lambda is the authoritative writer — it performs the merge inserts, field-level revision merges, and cancellation updates described above.

Consumers (read-only):

Repo How it reads Purpose
seahaven-slack-bot po-sync (DynamoDB Streams + daily scan) and wo-po-lookup Daily KB sync + Bedrock agent PO lookups

The consumer imports the table via Table.fromTableName(...) and is granted read-only access (grantReadData); it does not own or define it.

Schema-coordination rule: Any change to the purchase-orders schema (partition key, item shape, attribute names, streams view type) must be coordinated with seahaven-slack-bot. The owner here ships the change; the consumer must be updated in lockstep so its readers do not break. Treat schema changes as a cross-repo migration, not a local edit.

Known exception (INFRA-51): amazon-po-parser currently writes directly to purchase-orders outside this stack (backfill/enrichment scripts). This second writer is being folded into the po-ingest pipeline so this stack is the sole writer; until INFRA-51 closes, coordinate any schema change with amazon-po-parser as well.

WorkOrders and WorkOrderComments tables (owned here)

Both tables are owned by this repo's WorkorderIngestStack (cdk/wo_stack.py, RemovalPolicy.RETAIN):

  • WorkOrders — PK work_order_id (S).
  • WorkOrderComments — PK work_order_id (S), SK comment_id (S).

comment_id format change (issue #23). The WorkOrderComments range key is now work_order_id#<comment_time|nocomment>#<sha256(s3_object_key)[:12]> (e.g. 11144580730#2026-04-27T23:51:48#a1b2c3d4e5f6, or …#nocomment#… when the source email carries no comment time). Previously it was work_order_id#<timestamp>, where two emails on the same WO with an identical/absent comment time collided and overwrote each other. The 12-hex suffix is derived from the S3 object key alone — deterministic, so a Lambda async retry of the same object produces a byte-identical key (idempotent, no duplicate row), while two distinct emails on the same WO get distinct keys. Wall-clock now() is kept out of the key. Consumers that split on # and read index [0]/[1] are unaffected; anything that treated "everything after the first #" as a bare timestamp now also captures the hash segment.

Timestamp format shift. All stored ISO timestamps (created_at, updated_at, ingested_at on WO; processed_at, cancelled_at on PO) moved from naive datetime.utcnow().isoformat() to timezone-aware datetime.now(timezone.utc).isoformat(), so they now carry a +00:00 suffix (e.g. 2026-07-15T12:00:00+00:00). Downstream parsers that assumed a naive/no-offset string must accept the offset.

Both currently use default DynamoDB encryption — they are not yet on the shared customer-managed CMK (alias/seahaven-dynamodb, INFRA-95 / M-3); that migration is tracked in INFRA-6. The workorder-email-processor role no longer holds a pre-emptive encrypt/decrypt grant on that CMK (removed in the 2026-06-17 security sweep — it was unused while the tables are unencrypted and extended the role's decrypt reach to the CMK protecting purchase-orders). Re-add the grant as part of the INFRA-6 migration, at which point grant_read_write_data on the then-encrypted tables propagates the needed key permissions automatically.

Consumer (read-only) — data contract: seahaven-slack-bot imports both tables via Table.fromTableName(...) (grantReadData) and reads them from two Lambdas: workorder-sync (daily full-table scan into the Bedrock knowledge base) and wo-po-lookup (the Bedrock agent's direct WO lookup action group). The bot depends on the PK/SK schema above and these attributes: on WorkOrders — description, wo_status, customer, site_code, building, address, severity, priority, assigned_to, date_reported, scheduled_start, due_date, updated_at; on WorkOrderComments — created_at (used to sort comments), commenter, text. Any change to table name, key schema, these attribute names, or the encryption configuration (e.g. the INFRA-6 CMK migration) must be coordinated with seahaven-slack-bot before it ships, or the Bedrock agent breaks at runtime (not at deploy — the tables are imported by name, so there is no compile-time link).

verified-sites table (owned here)

Owned by this repo's po-ingest stack (cdk/po_stack.py). PK siteCode (S); default DynamoDB encryption (NOT the shared CMK).

Consumer (read-only) — data contract: seahaven-slack-bot's wo-po-lookup Lambda imports this table via Table.fromTableName(...) for the Bedrock agent's lookup_site action. It does point lookups by siteCode and reads address, fullAddress, city, state, zip, latitude, longitude, notes. Coordinate any change to the table name, key schema, or these attribute names with seahaven-slack-bot.

GSI drift (INFRA-138): the by-state GSI was removed here on 2026-06-03 (audit M-20, "0 reads in 30d"), but seahaven-slack-bot still queries IndexName: 'by-state' for its state-listing path, so that path fails at runtime today. Restoring the GSI or removing the consumer's state path needs to be reconciled cross-repo. This is the kind of silent owner-side lifecycle change this data-contract note exists to prevent.

Documentation

The canonical map of Sea Haven's AWS infrastructure lives in Confluence. This project's po-ingest and WorkorderIngestStack stacks are represented there as Mermaid subgraphs.

CI/CD

GitHub Actions with reusable workflows from Sea-Haven-Industries/.github (all pinned to a commit SHA of main):

  • CI (ci.yaml, PR to main): linting + cdk synth via ci-python-sam.yaml
  • CD (deploy.yaml, push to main): CDK deploy via cd-cdk.yaml (OIDC auth)
  • Plus dependency review and PR labeler workflows on every PR

Branch protection on main — all changes through PR.

Setup

  1. Bootstrap CDK: cdk bootstrap aws://{AccountId}/us-east-1
  2. Ensure the Bedrock inference profile us.anthropic.claude-haiku-4-5-20251001-v1:0 is enabled in us-east-1 (it is; the CDK grants cover cross-region routing to us-east-2/us-west-2). No API key or secret to set — the processors authenticate to Bedrock via their IAM roles.
  3. Create the web UI auth-gate shared secret. This secret is imported by name (Secret.from_secret_name_v2), not CDK-managed, so it must exist before deploy or the web-ui Lambdas fail closed:
    aws secretsmanager create-secret --name procurement-ingest/web-ui-auth-token --secret-string "$(openssl rand -hex 32)"
    
  4. Deploy both stacks:
    cd cdk
    pip install -r requirements.txt
    cdk deploy --all
    
  5. Post-deploy cleanup (one-time): the retired RETAIN-policy secrets po-ingest/anthropic-api-key and workorder-ingest/anthropic-api-key are orphaned by this deploy, not deleted. Remove them and revoke the keys at the provider:
    aws secretsmanager delete-secret --secret-id po-ingest/anthropic-api-key --force-delete-without-recovery
    aws secretsmanager delete-secret --secret-id workorder-ingest/anthropic-api-key --force-delete-without-recovery
    
  6. Dashboards: po-web-ui and workorder-web-ui have no public endpoint (the Function URLs were removed 2026-06-08, INFRA-74). Invoke them through an authenticated path that forwards the X-Auth-Token header, e.g. aws lambda invoke --function-name po-web-ui /tmp/out.json.

Tests

Offline unit tests (no AWS, no network) run via pytest from the repo root:

pip install pytest
pytest

Coverage:

  • tests/ — shared handler + cross-pipeline tests: parse_raw_email and pad_zip, the PO merge-write semantics (test_po_merge.py, #97, moto-backed), and the fail-closed sender-authentication parser (test_ses_auth.py, INFRA-107).
  • lambdas/wo/email_processor/tests/ — the deterministic WO parser suite: golden-file tests over 55 real scrubbed .eml fixtures (test_parser.py), fail-closed validation-gate rules and adversarial/injection cases (test_validation_gate.py), the issue #23 comment_id idempotency invariants (test_comment_id.py), and the Bedrock-fallback dispatch/EMF-metric behavior with a mocked invoke_model (test_bedrock_fallback.py). Golden JSON lives under tests/fixtures/expected/.
  • lambdas/po/email_processor/tests/ — the deterministic PO parser suite: golden-file tests over real scrubbed .eml fixtures (17 single-line new-PO + 8 cancellations, exact Decimal-aware golden comparison via parse_float=Decimal), fail-closed validation-gate coverage for every gate reason code (fixture-driven for body-level triggers under fixtures/adversarial/, direct validate() unit tests for candidate-level mutations), real multi-line and comment/non-Coupa fallback fixtures under fixtures/ai-fallback/, dual line-ending (CRLF/LF) parse-identity, two-path enrich_parsed/save_new_po parity (the site-extractor stream-contract guard), fixture hygiene (ses_auth pass + scrub-marker leak sweep), and the Bedrock-fallback dispatch/EMF-metric behavior (test_po_bedrock_fallback.py).

All three roots are discovered by pytest.ini (testpaths).

Scripts

Reprocess PO emails (re-run parser against all emails still in S3):

python scripts/reprocess.py            # dry-run
python scripts/reprocess.py --execute  # invoke po-email-processor for each

Backfill verified sites (one-time scan of historical POs):

python scripts/backfill_sites.py

Directory Structure

cdk/
  app.py               # Two stacks: po-ingest + WorkorderIngestStack
  po_stack.py          # Purchase order pipeline resources
  wo_stack.py          # Work order pipeline resources
lambdas/
  po/                  # PO pipeline Lambdas
    email_processor/
      handler.py         # template-first + Bedrock fallback, EMF metric, merge writes
      template_parser.py # pure deterministic Coupa parser + fail-closed validation gate
      tests/             # golden-file + validation-gate + fallback-dispatch tests + fixtures
    site_extractor/
    web_ui/
  wo/                  # WO pipeline Lambdas
    email_processor/
      handler.py         # template-first + Bedrock fallback, EMF metric, #23 comment_id
      template_parser.py # pure deterministic parser + fail-closed validation gate
      tests/             # golden-file + validation-gate + comment_id + fallback tests
    web_ui/
scripts/
  reprocess.py
  backfill_sites.py
test_local.py          # Parse sample emails through Bedrock locally (no AWS mutation)
tests/
  requirements.txt         # Test-only deps (moto)
  conftest.py              # AWS env stubs + per-pipeline module loader
  test_pad_zip.py          # PO zip-code padding tests
  test_parse_raw_email.py  # MIME parsing tests (PO + WO handlers)
  test_po_merge.py         # PO merge-write semantics tests (#97)
  test_ses_auth.py         # Sender-authentication parser tests (INFRA-107)