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edwardmonteiro

optimizationexperiment-brief

by edwardmonteiro

Make Claude Skills work in other agents like Codex by adding the missing piece: a small enumerator script.

0🍴 1📅 2025年12月23日
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SKILL.md


name: optimization.experiment_brief phase: optimization roles:

  • Product Designer
  • Product Manager description: Prepare an experiment brief outlining hypothesis, design, success metrics, and operational plan. variables: required:
    • name: hypothesis description: Hypothesis statement to validate.
    • name: primary_metric description: Primary metric measuring experiment success. optional:
    • name: secondary_metrics description: Supporting or guardrail metrics.
    • name: audience description: User segment or cohort being targeted. outputs:
  • Experiment overview with hypothesis, rationale, and metrics.
  • Test design including variants, sample size, and timeline.
  • Operational checklist for launch, monitoring, and decision-making.

Purpose

Ensure experiments are well-defined, measurable, and aligned with user experience considerations before launch.

Pre-run Checklist

  • ✅ Align with analytics on measurement feasibility and sample size.
  • ✅ Confirm design assets and engineering bandwidth for variants.
  • ✅ Review related research or previous experiments for context.

Invocation Guidance

codex run --skill optimization.experiment_brief \
  --vars "hypothesis={{hypothesis}}" \
         "primary_metric={{primary_metric}}" \
         "secondary_metrics={{secondary_metrics}}" \
         "audience={{audience}}"

Recommended Input Attachments

  • Design mockups or copy variations.
  • Experiment backlog or learning agenda.
  • Prior experiment analyses.

Claude Workflow Outline

  1. Summarize hypothesis, audience, and metrics.
  2. Detail the experiment design: variants, allocation, instrumentation, and run duration.
  3. Provide sample size estimation guidance and data dependencies.
  4. Outline monitoring plan, success criteria, and decision framework.
  5. Document collaboration and approval workflow.

Output Template

## Experiment Overview
- Hypothesis:
- Audience:
- Primary Metric:
- Secondary Metrics:

## Test Design
| Variant | Description | % Allocation | Key Changes |
| --- | --- | --- | --- |
- Expected Duration:
- Sample Size Estimate:

## Measurement & Monitoring
- Instrumentation Checklist:
- Data Quality Checks:
- Decision Cadence:

## Launch Plan
- Approvals:
- Launch Date:
- Responsibilities:

Follow-up Actions

  • Secure approvals from product, design, engineering, and analytics leads.
  • Schedule mid-test reviews to monitor guardrails.
  • Plan post-test readout session.

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