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GitHub 저장소

truesight-mcp-skills

truesight-mcp-skills에는 Goodeye-Labs에서 수집한 skills 9개가 있으며, 저장소 수준 직업 범위와 사이트 내 skill 상세 페이지를 제공합니다.

수집된 skills
9
Stars
7
업데이트
2026-03-25
Forks
1
직업 범위
직업 카테고리 3개 · 100% 분류됨
저장소 탐색

이 저장소의 skills

create-evaluation
소프트웨어 품질 보증 분석가·테스터

Scope what quality should be measured, convert it into one or more actionable binary evaluations, deploy those evaluations through Truesight MCP, and generate a companion skill that applies them correctly. Use when a user wants to create new evals, quality checks, guardrails, or pass/fail criteria for AI outputs.

2026-03-25
generate-synthetic-data
데이터 과학자

Generate synthetic test data for LLM evaluations using dimension-based tuple expansion. Use when the user needs synthetic traces, test cases, eval datasets, or when create-evaluation needs synthetic fallback data.

2026-03-24
truesight-workflows
데이터 과학자

Orchestrator for Truesight MCP skills. Use this when the user needs help choosing the right Truesight workflow or when intent is ambiguous across LLM evaluate, error analysis, review, templates, or evaluation creation.

2026-03-24
bootstrap-template-evaluation
소프트웨어 품질 보증 분석가·테스터

Fastest route to a deployed live evaluation using a pre-built Truesight template. Use when the user wants a quick start without building judgment configs from scratch.

2026-03-10
build-review-interface
웹 개발자

Build a custom web interface for trace annotation and review. Use when users need a bespoke review surface for their workflow.

2026-03-10
error-analysis
데이터 과학자

Systematically identify and categorize failure modes in evaluated traces using Truesight datasets and error-analysis tools. Use when quality issues are unclear, after major pipeline changes, or when incidents indicate drift.

2026-03-10
eval-audit
데이터 과학자

Audit an existing evaluation workflow and produce severity-ranked findings with concrete next actions. Use when inheriting an eval setup, diagnosing quality regressions, or checking LLM evaluation process maturity.

2026-03-10
evaluate-trace
소프트웨어 품질 보증 분석가·테스터

Evaluate one or more traces against an existing Truesight live evaluation. Use when a deployed live evaluation already exists and the user wants run outputs with optional handoff to review and promotion.

2026-03-10
review-and-promote-traces
데이터 과학자

Judge flagged trace outputs and promote judged items back to datasets. Use when an evaluation run requires human judgment or when review queue items need to be judged for promotion into the dataset.

2026-03-10