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data-observability

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Actualizado25 de junio de 2026 a las 11:58

Designs run-time, estate-wide data observability over arbitrary warehouse/lakehouse tables nobody wrote explicit rules for. Owns (1) the five pillars (freshness, volume, schema, distribution/quality, lineage) as AUTO-BASELINED monitors vs the rule-authored model, (2) column-level LINEAGE as the root-cause primitive (bad metric → upstream table → column → job), (3) the incident lifecycle (detect → triage → ownership routing → SLA), (4) anomaly detection on metadata signals, (5) the build-vs-buy category axes. Use when monitoring data health across many tables, tracing a bad dashboard number to its upstream cause, standing up automated table monitors, or scoping a data-observability platform. Defers author-time per-pipeline validation/quarantine to /data-quality, ML-feature run-time freshness/null/PSI+routing to /feature-monitoring, Databricks UC product-config to /lakehouse-monitoring, and vendor TCO scoring to /build-vs-buy.

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