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Metrics Review
Review and analyze product metrics with trend analysis and actionable insights. Use when running a weekly, monthly, or quarterly metrics review, investigating a sudden spike or drop, comparing performance against targets, or turning raw numbers into a scorecard with recommended actions.
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# Metrics Review > If you see unfamiliar placeholders or need to check which tools are connected, see [CONNECTORS.md](../../CONNECTORS.md). Review and analyze product metrics, identify trends, and surface actionable insights. ## Usage ``` /metrics-review $ARGUMENTS ``` ## Workflow ### 1. Gather Metrics Data If **~~product analytics** is connected: - Pull key product metrics for the relevant time period - Get comparison data (previous period, same period last year, targets) - Pull segment breakdowns if available If no analytics tool is connected, ask the user to provide: - The metrics and their values (paste a table, screenshot, or describe) - Comparison data (previous period, targets) - Any context on recent changes (launches, incidents, seasonality) Ask the user: - What time period to review? (last week, last month, last quarter) - What metrics to focus on? Or should we review the full product metrics suite? - Are there specific targets or goals to compare against? - Any known events that might explain changes (launches, outages, marketing campaigns, seasonality)? ### 2. Organize the Metrics Structure the review using a metrics hierarchy: North Star metric at the top, L1 health indicators (acquisition, activation, engagement, retention, revenue, satisfaction), and L2 diagnostic metrics for drill-down. See **Product Metrics Hierarchy** below for full definitions. If the user has not defined their metrics hierarchy, help them identify their North Star and key L1 metrics before proceeding. ### 3. Analyze Trends For each key metric: - **Current value**: What is the metric today? - **Trend**: Up, down, or flat compared to previous period? Over what timeframe? - **vs Target**: How does it compare to the goal or target? - **Rate of change**: Is the trend accelerating or decelerating? - **Anomalies**: Any sudden changes, spikes, or drops? Identify correlations: - Do changes in one metric correlate with changes in another? - Are there leading indicators that predict lagging metric changes?
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