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langsmith-observability

LLM observability platform for tracing, evaluation, and monitoring. Use when debugging LLM applications, evaluating model outputs against datasets, monitoring production systems, or building systematic testing pipelines for AI applications.

68

Quality

82%

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SecuritybySnyk

Low

Low-risk findings worth noting

SKILL.md
Quality
Evals
Security

Low

Low-risk findings.

2 low severity findings. Worth noting, but not necessarily harmful.

Low

W011: Third-party content exposure detected (indirect prompt injection risk).

What this means

The skill exposes the agent to untrusted, user-generated content from public third-party sources, creating a risk of indirect prompt injection. This includes browsing arbitrary URLs, reading social media posts or forum comments, and analyzing content from unknown websites.

Why it was flagged

The required workflow shown in SKILL.md uses LangSmith “hub prompts” by calling `client.pull_prompt(...)` at runtime and then `prompt.invoke(...)`, meaning any outsider-authored free text from that prompt (hub content) can be ingested into the LLM context via `prompt.invoke`.

Report incorrect finding
Low

W012: Unverifiable external dependency detected (runtime URL that controls agent).

What this means

The skill fetches instructions or code from an external URL at runtime, and the fetched content directly controls the agent’s prompts or executes code. This dynamic dependency allows the external source to modify the agent’s behavior without any changes to the skill itself.

Why it was flagged

Examples show pulling prompts and writing runs at runtime to LangSmith API endpoints (e.g., fetching hub prompts via the client), and those endpoints are explicitly referenced such as https://api.smith.langchain.com and the multi-tenant endpoints https://api-team1.langsmith.com and https://api-team2.langsmith.com which can deliver prompt templates that directly control agent behavior.

Repository
OpenLAIR/dr-claw
Audited
Security analysis
Snyk

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