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awesome-copilot

awesome-copilot contient 17 skills collectées depuis Sertxito, avec une couverture métier par dépôt et des pages de détail sur le site.

skills collectés
17
Stars
0
mis à jour
2026-05-24
Forks
0
Couverture métier
4 catégories métier · 100% classifié
explorateur de dépôts

Skills dans ce dépôt

rag-cost-scaler
Administrateurs de réseaux et de systèmes informatiques

Scale up or scale down Azure RAG configurations (Search, Log Analytics, Insights) and manage budgets/alerts automatically. Reversible changes with cost calculation before applying.

2026-05-24
rag-storage-connector
Développeurs de logiciels

PowerShell helper for obtaining Azure Blob Storage credentials via Azure CLI. Provides connection strings used by RAG indexers and document upload pipelines to access Blob Storage.

2026-05-24
rag-indexer
Développeurs de logiciels

Design document ingestion and indexing workflows for Azure AI Search, including chunking, metadata strategy, and incremental reindexing guidance.

2026-05-22
rag-api-server
Développeurs de logiciels

Exposes RAG functionality as a REST API for external applications. Provides HTTP endpoints for document search and query with JSON request/response, async processing, CORS support, and observability metrics.

2026-05-22
rag-diagnostics
Administrateurs de réseaux et de systèmes informatiques

Monitors, diagnoses and troubleshoots RAG system health. Verifies Azure AI Search connectivity, index status, configuration, and provides real-time monitoring with actionable error reports.

2026-05-22
rag-report-generator
Spécialistes en relations publiques

Professional executive report generation using Claude Opus 4.7. Generates high-quality DOCX reports with professional formatting, compelling narratives, and quantified impact metrics. Perfect for client presentations and stakeholder communication.

2026-05-22
rag-sharepoint-connector
Développeurs de logiciels

Hybrid-professional SharePoint integration for RAG. Two modes: Professional (Azure Search indexer, real-time sync, no duplication) or Local (download to knowledge/, coexists with traditional docs)

2026-05-22
rag-validator
Analystes en assurance qualité des logiciels et testeurs

Expert RAG validator: verifies that agents, instructions, skills, and RAG implementations comply with Microsoft RAG best practices and repository guidelines.

2026-05-22
rag-architecture-optimizer
Développeurs de logiciels

Validates and optimizes Azure RAG deployment architecture for cost efficiency and performance. Reviews service tiers, scaling, redundancy, and recommends right-sizing before deployment.

2026-05-22
rag-cost-analyst
Développeurs de logiciels

Comprehensive Azure cost analysis, forecasting, and optimization recommendations. Analyzes infrastructure costs, model inference costs, and identifies savings opportunities.

2026-05-22
rag-deployment-templates
Développeurs de logiciels

Bicep IaC templates to deploy Azure OpenAI, AI Search, and Application Insights. Reusable across any RAG project. Includes main.bicep and deploy.sh orchestration.

2026-05-22
rag-orchestration
Développeurs de logiciels

Complete automated RAG setup orchestrator in 8 phases for new projects

2026-05-22
rag-qa-engine
Développeurs de logiciels

Interactive conversational RAG query engine for Q&A over documents

2026-05-22
rag-qa-engine
Développeurs de logiciels

Build and evaluate a conversational QA layer over indexed enterprise knowledge with grounding, citation handling, and response quality checks.

2026-05-22
rag-query-cli
Développeurs de logiciels

Interactive CLI for searching and querying documents indexed in a RAG system using Azure AI Search and Azure OpenAI. Supports hybrid search, source tracking, response generation, and UTF-8 compatibility on Windows.

2026-05-22
rag-agent-instrumentation
Développeurs de logiciels

Reusable Python modules for agent instrumentation: metrics collection, Application Insights integration, observability logging. Used by all agents to capture tokens, latency, cost, errors.

2026-05-22
rag-azure-setup
Développeurs de logiciels

Plan and scaffold Azure resources for a production-ready RAG baseline with Azure OpenAI, Azure AI Search, Storage, and observability defaults.

2026-05-21