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ml-experiment-planner

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UpdatedMay 24, 2026 at 18:22

Generates structured, rigorous experiment plans for machine learning research. Use this skill whenever a user wants to design, plan, or structure an ML experiment — including baseline comparisons, ablation studies, hyperparameter sweeps, architecture searches, data experiments, fine-tuning runs, or evaluation protocols. Trigger on phrases like "experiment plan", "research plan", "how should I test", "design an experiment", "ablation study", "benchmark this", "evaluate my model", "compare these approaches", or any request to systematically validate an ML idea or hypothesis. Also use for questions like "how do I know if X works better than Y" in an ML context. Produces a research-design plan (hypothesis, conditions, metrics, decision rules) — NOT a code-implementation plan. Implementation planning is a separate follow-up step, ideally run in plan mode after the experiment plan is accepted. Do NOT use for pure theory questions, math derivations, non-ML software engineering tasks, or for planning the code/scripts

Installation

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