gradient-boostong · v1.0.0 · 2026-04-11 · sha256 28fd3c761647c666
gradient-boostong v1.0.0A
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--- name: gradient-boostong description: > Use this skill when building and tuning gradient boosting models with XGBoost and CatBoost for tabular prediction tasks. version: 1.0.0 authors: - Marie-Lynne Block tags: - data-science - [TODO] --- ## What this skill does [TODO] Define the specific workflow this skill standardizes, including default libraries, quality checks, and expected deliverables. ## When to use it [TODO] List concrete user intents and trigger phrases that should activate this skill. ## Instructions 1. Clarify the objective, data assumptions, and success metrics. 2. Execute a leakage-safe and reproducible workflow for this skill domain. 3. Validate outputs with diagnostics, edge-case checks, and documented caveats. ## Output format - A concise plan of action - Executable code or commands - Validation summary with assumptions and risks ## Examples ### Example 1 - baseline workflow **Input:** User asks for help in gradient-boostong. **Expected output:** A reproducible, validated workflow using the skill's core tools. ## Notes - Prefer documented, stable APIs over experimental shortcuts. - Record assumptions explicitly when data quality or labels are uncertain.