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Model Evaluation Suite

ASecurity

This skill allows claude to evaluate machine learning models using a

21 stars
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Added 2/7/2026
testingbashtestingperformance

Works with

claude code

Security Analysis

A100/100

Pro scans all 8 files and shows the line behind each finding

Scanned 2/12/2026

$npx -y skills add BbgnsurfTech/claude-skills-collection --skill model-evaluation-suite --agent claude-code

Installs into .claude/skills of the current project.

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Files
SKILL.md
---
description: This skill allows claude to evaluate machine learning models using a
  comprehensive suite of metrics. it should be used when the user requests model performance
  analysis, validation, or testing. claude can use this skill to assess model accuracy,
  p...
allowed-tools:
- Read
- Write
- Edit
- Grep
- Glob
- Bash
name: evaluating-machine-learning-models
license: MIT
---
## Overview

This skill empowers Claude to perform thorough evaluations of machine learning models, providing detailed performance insights. It leverages the `model-evaluation-suite` plugin to generate a range of metrics, enabling informed decisions about model selection and optimization.

## How It Works

1. **Analyzing Context**: Claude analyzes the user's request to identify the model to be evaluated and any specific metrics of interest.
2. **Executing Evaluation**: Claude uses the `/eval-model` command to initiate the model evaluation process within the `model-evaluation-suite` plugin.
3. **Presenting Results**: Claude presents the generated metrics and insights to the user, highlighting key performance indicators and potential areas for improvement.

## When to Use This Skill

This skill activates when you need to:
- Assess the performance of a machine learning model.
- Compare the performance of multiple models.
- Identify areas where a model can be improved.
- Validate a model's performance before deployment.

## Examples

### Example 1: Evaluating Model Accuracy

User request: "Evaluate the accuracy of my image classification model."

The skill will:
1. Invoke the `/eval-model` command.
2. Analyze the model's performance on a held-out dataset.
3. Report the accuracy score and other relevant metrics.

### Example 2: Comparing Model Performance

User request: "Compare the F1-score of model A and model B."

The skill will:
1. Invoke the `/eval-model` command for both models.
2. Extract the F1-score from the evaluation results.
3. Present a comparison of the F1-scores for model A and model B.

## Best Practices

- **Specify Metrics**: Clearly define the specific metrics of interest for the evaluation.
- **Data Validation**: Ensure the data used for evaluation is representative of the real-world data the model will encounter.
- **Interpret Results**: Provide context and interpretation of the evaluation results to facilitate informed decision-making.

## Integration

This skill integrates seamlessly with the `model-evaluation-suite` plugin, providing a comprehensive solution for model evaluation within the Claude Code environment. It can be combined with other skills to build automated machine learning workflows.

Attribution

BbgnsurfTechBbgnsurfTech
View sourceSee grades on GitHubMore from BbgnsurfTech →
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