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analytics-ml

Machine learning modeling conventions for applied analytics: feature engineering, model evaluation, validation strategy, and deployment considerations. Use this skill when building predictive models, selecting features, choosing evaluation metrics, setting up train/test splits, or discussing ML methodology for business applications. Also apply when the user asks about classification, regression, churn prediction, forecasting, or any supervised/unsupervised learning task in an analytics context. Use when this capability is needed.

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Repository
tomevault-io/skills-registry
Last source activity
July 3, 2026 at 19:45
Detected SKILL.md language
English
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