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Agent Reliability MCP Server

Compute AI agent reliability scores, success rates, latency stats and failure patterns — pure math, zero API cost.

This MCP server gives any AI agent (Claude, Cursor, ChatGPT, etc.) the ability to analyze how reliable other AI agents are using only the numbers you feed it. Perfect for entrepreneurs building agent products who want quick, trustworthy metrics without expensive observability platforms.

Why this exists

When you ship an AI agent, it sometimes fails. Counting successes by hand is boring. This server does the hard math for you in one tool call.

Related MCP server: MCP Agent Reliability Server

Tools

Tool

What it does

score_agent_reliability

Gives an overall 0-100 reliability score + letter grade

calculate_success_rate

Success % with statistical confidence interval

analyze_latency

Mean, median, p95, p99 latency numbers

detect_failure_patterns

Finds the most common error messages

simulate_reliability

Monte-Carlo projection of future success

compare_agents

Which of two agents is more reliable?

Quick start (after publish)

npx @mcpize/cli install agent-reliability-mcp

Or add to your MCP client config.

For entrepreneurs

  • Zero running cost (no external APIs)

  • Helps you decide which agent version to ship

  • Works offline

  • Ready for MCPize marketplace

License

MIT

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