Spanlens vs Langfuse Mcp

Side-by-side comparison of two Model Context Protocol servers — install paths, tools, quality signals, and directory engagement so you can pick the right one for Claude, Cursor, and other MCP clients.

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Spanlens logo
Spanlens
spanlens
📊 Monitoring
Langfuse Mcp logo
Langfuse Mcp
avivsinai
📊 Monitoring
SummaryQuery your Spanlens LLM observability from any MCP client. 7 read tools for request logs, agent traces, cost stats, anomalies, model-savings, and per-user analytics across OpenAI, Anthropic, and Gemini. Open source, self-hostable. npx -y @spanlens/mcp-serverQuery Langfuse traces, debug exceptions, analyze sessions, and manage prompts. Full observability toolkit for LLM applications.
Quality signal45/100 (Fair)47/100 (Fair)
Install pathnpx · highuvx · high
Engagement 0 0 0 11 3 0 0 102
ToolsRequest logging with full prompt, response, cost, and latency dataAgent tracing for multi-step and tool-based LLM callsCost tracking and model usage analytics across providersAnomaly detection and PII scanningPrompt versioning and A/B experiment supportSelf-hostable with a single Docker command and open source MIT licenseQuery and inspect Langfuse traces and observationsFind and triage exceptions and error countsAnalyze sessions and user activity detailsManage prompts, datasets, annotation queues, and scoresIncludes an agent skill with ready-made debugging playbooksSupports local deployment with token and output control
Verified / officialNoNo
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