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lakehouse-monitoring

النجوم٢
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آخر تحديث٢٥ يونيو ٢٠٢٦ في ١١:٥٨

Configures a Databricks data-profiling monitor (formerly Lakehouse Monitoring; the data-profiling half of Unity Catalog Data Quality Monitoring) over a Delta or inference table — selects profile type (Snapshot/TimeSeries/InferenceLog) from table shape, chooses a baseline strategy, sets slice expressions + custom metrics + granularities, configures refresh cadence + cost, and wires the auto-generated profile + drift metric tables to the auto-dashboard + SQL alerts, including the inference-table→drift-alert loop. Use when standing up Lakehouse Monitoring / data profiling on a UC table, wiring a served model's inference table to drift alerts, or choosing a monitor profile type + baseline. Owns the PRODUCT config; defers drift statistics (PSI/KS/threshold math) to /model-drift + /feature-monitoring, serving to /databricks-model-serving, and Databricks' built-in anomaly detection (the other half of Data Quality Monitoring) is out of scope.

التثبيت

التثبيت باستخدام Codex أو Claude انسخ هذا Prompt والصقه في Codex أو Claude أو مساعد آخر ليراجع صفحة Skill ويثبّتها لك.

SKILL.md
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