Reconcile uploaded telemetry manifests against committed checkpoints
Object storage contains yesterday's batches, but dashboard totals are low and no worker currently owns the missing jobs.
- Focused work estimate
- 3h + prerequisites
- Priority in the scenario
- Medium
- Engineering practice
- Reconciliation · Operations
Estimated field mix
- Data engineering50%
- Storage systems30%
- Site reliability20%
Field percentages are editorial estimates of the ticket's engineering focus. They total 100%; they are not measured time, proficiency scores, or ownership evidence.
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Project context
A fictional energy dashboard receives hourly device batches. Corrupt archives and late corrections leave operators unsure which readings reached reports.
Setup prerequisites
- Create synthetic device batches and local object-store fixtures.
- Understand checksums and bounded streaming.
Preceding work
Complete these dependencies, or supply their agreed outputs before taking this ticket.
- AINGEST-101 · Record a manifest before decoding a telemetry batch
- AINGEST-102 · Cap decompressed telemetry bytes before archive expansion
- AINGEST-103 · Normalize sensor units through a versioned conversion table
- AINGEST-104 · Commit telemetry rows and the batch checkpoint atomically
- AINGEST-105 · Quarantine malformed readings with usable row coordinates
- AINGEST-106 · Apply corrected readings without overwriting source history
- AINGEST-107 · Use event-time watermarks without discarding late telemetry silently
Acceptance criteria
- List missing, pending and committed manifests by bounded window.
- Schedule replay only for eligible uncommitted identities.
- Make repeated reconciliation produce no duplicate committed data.
Implementation constraints
- Require explicit organization and time bounds.
Verification to include
- Find a synthetic uploaded batch without a checkpoint.
- Rerun reconciliation after commit and schedule nothing additional.
Deliverables
- Manifest reconciler and bounded replay command
Rollout and recovery
Dry-run first; stop replay dispatch while preserving the discrepancy report.
Value of the work
For the engineer: Practice batch integrity, replay and data-quality boundaries.
For the team: Review whether operational data can be traced, corrected and recovered.
Evidence boundaries
Outcome Evidence: Tests, patches, and runbooks are requested deliverables. They become Outcome Evidence only through a qualified Mission and immutable Evidence IDs.
Ownership Evidence: Independent adaptation must be observed under a declared verification policy and cite immutable Evidence IDs. Completing a planning ticket establishes no Ownership Evidence.