aj-geddes/useful-ai-prompts

distributed-tracing

Implement distributed tracing with Jaeger and Zipkin for tracking requests across microservices. Use when debugging distributed systems, tracking request flows, or analyzing service performance.

First seen Jan 21, 2026

Installation

$ npx skills add aj-geddes/useful-ai-prompts --skill distributed-tracing

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More details

Agent compatibility

Declared targets from SKILL.md / docs. Unmarked agents are not listed — the skill may still install via the CLI.

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Repository health

Stars 334
License LICENSE
Default branch main
Open issues 1
Status Active

Package contents

Files included with this skill beyond the listing page.

  • skill md SKILL.md 2,238 B
  • docs SUMMARY.md 820 B

History

  1. First seen on skills.sh
  2. First recorded snapshot · 393 installs

SKILL.md

Distributed Tracing

Table of Contents

  • [Overview](#overview)
  • [When to Use](#when-to-use)
  • [Quick Start](#quick-start)
  • [Reference Guides](#reference-guides)
  • [Best Practices](#best-practices)

Overview

Set up distributed tracing infrastructure with Jaeger or Zipkin to track requests across microservices and identify performance bottlenecks.

When to Use

  • Debugging microservice interactions
  • Identifying performance bottlenecks
  • Tracking request flows
  • Analyzing service dependencies
  • Root cause analysis

Quick Start

Minimal working example:

# docker-compose.yml
version: "3.8"
services:
  jaeger:
    image: jaegertracing/all-in-one:latest
    ports:
      - "5775:5775/udp"
      - "6831:6831/udp"
      - "16686:16686"
      - "14268:14268"
    networks:
      - tracing

networks:
  tracing:

Reference Guides

Detailed implementations in the references/ directory:

Guide Contents
[Jaeger Setup](references/jaeger-setup.md) Jaeger Setup, Node.js Jaeger Instrumentation
[Express Tracing Middleware](references/express-tracing-middleware.md) Express Tracing Middleware
[Python Jaeger Integration](references/python-jaeger-integration.md) Python Jaeger Integration
[Distributed Context Propagation](references/distributed-context-propagation.md) Distributed Context Propagation
[Zipkin Integration](references/zipkin-integration.md) Zipkin Integration, Trace Analysis

Best Practices

✅ DO

  • Sample appropriately for your traffic volume
  • Propagate trace context across services
  • Add meaningful span tags
  • Log errors with spans
  • Use consistent service naming
  • Monitor trace latency
  • Document trace format
  • Keep instrumentation lightweight

❌ DON'T

  • Sample 100% in production
  • Skip trace context propagation
  • Log sensitive data in spans
  • Create excessive spans
  • Ignore sampling configuration
  • Use unbounded cardinality tags
  • Deploy without testing collection