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NVIDIA RAG Blueprint

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Manage and deploy RAG services with ease.

by nvidia2.8k stars on nvidia/skills
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Updated Aug 7, 2026
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What NVIDIA RAG Blueprint does

The NVIDIA RAG Blueprint skill is designed for developers and system administrators who need to deploy, configure, and manage Retrieval-Augmented Generation (RAG) services. This skill provides a comprehensive framework for handling various RAG actions, including deployment, troubleshooting, and feature management across multiple environments such as Docker and Kubernetes. With a focus on automation, it streamlines the process of setting up and maintaining RAG services, making it easier for users to focus on their core tasks without getting bogged down in manual configurations.

By leveraging the NVIDIA RAG Blueprint, users can automatically detect system configurations and service states, which minimizes the need for manual input. The skill intelligently routes user requests to the appropriate actions based on intent detection, allowing for quick responses to deployment, configuration, or troubleshooting needs. This is particularly beneficial in complex environments where multiple services and configurations are in play, as it reduces the potential for errors and improves overall efficiency.

The skill includes detailed references for configuring various features such as VLM, NeMo Guardrails, query rewriting, and more, ensuring that users have access to the necessary documentation right when they need it. The structured approach to managing RAG services not only simplifies deployment but also enhances observability and performance monitoring, making it a valuable tool for teams working with AI-driven applications.

Overall, the NVIDIA RAG Blueprint skill is ideal for organizations looking to implement RAG capabilities efficiently while maintaining control over their deployment and operational processes. It is particularly suited for teams with existing NVIDIA infrastructure and expertise in Docker and Kubernetes, providing a robust solution for managing advanced AI workflows.

When to use it

Use this skill when you need to deploy, configure, or troubleshoot NVIDIA RAG services in Docker or Kubernetes environments.

When not to use it

This skill may not be suitable for users unfamiliar with Docker or Kubernetes, or for those not working with NVIDIA's RAG services.

What you can build with it

Deploying RAG Services

Quickly set up RAG services in a Docker or Kubernetes environment using the skill's automated deployment features.

Troubleshooting RAG Issues

Utilize the skill's guided troubleshooting process to identify and resolve issues with RAG services efficiently.

Configuring RAG Features

Easily configure various RAG features such as query rewriting and ingestion by following the skill's reference documentation.

How to install NVIDIA RAG Blueprint

View source

1. Install with the skills CLI

npx skills add nvidia/skills/rag-blueprint --agent claude-code

2. Or install it manually

Download the skill folder and drop it into ~/.claude/skills/ for all projects, or .claude/skills/ to scope it to one repo. Restart Claude Code so it picks up the new skill.

Anthropic's agentic coding CLI, and the reference implementation of Agent Skills. Drop a skill folder into ~/.claude/skills and Claude Code loads it automatically whenever a task matches the skill's description. Claude Code docs

Inside SKILL.md

Written by nvidia

NVIDIA RAG Blueprint

Purpose

Use this skill for NVIDIA RAG Blueprint operations: deployment, configuration, troubleshooting, shutdown, and feature management across Docker, Helm, and library deployments.

Instructions

  1. Match the user request to the intent routing table below.
  2. Read the referenced playbook before making changes.
  3. Use repository docs and deployment config files as the source of truth.
  4. Verify the affected service or workflow after changes.

Prerequisites

  • NVIDIA RAG Blueprint repository checkout.
  • Docker/Compose or Kubernetes/Helm for deployments.
  • Python 3.11+ for library workflows.
  • NVIDIA GPU tooling for self-hosted NIM services.

Autonomy Principles

  • Auto-detect everything: GPU, VRAM, drivers, Docker, CUDA, disk, OS, ports, existing services, NGC key, repo state.
  • If it can be checked with a command, check it — don't ask the user.
  • Ask only when user action is required: providing an API key, confirming data deletion, or choosing between equally valid options.
  • Once analysis is done, route to the correct workflow and execute.

Intent Detection

Determine what the user wants and route immediately:

User IntentAction
Deploy, install, set up, start RAGRead and follow references/deploy.md
Configure, enable, change, toggle a featureUse the Configure section below
Troubleshoot, debug, fix, error, unhealthyRead and follow references/troubleshoot.md
Stop, shutdown, tear down, clean upRead and follow references/shutdown.md

If the intent is ambiguous, infer from context (e.g., "RAG isn't working" → troubleshoot; "get RAG running" → deploy). Only ask if genuinely unclear.


Configure

Requires a running RAG deployment. If services are not running, deploy first via references/deploy.md.

Match the user's request to a reference file, then read and follow it:

Feature KeywordsReference
VLM, VLM embeddings, image captioningreferences/configure/vlm.md
NeMo Guardrailsreferences/configure/guardrails.md
Agentic RAG, planning/execution agent, agentic streaming, stage eventsreferences/configure/agentic-rag.md
Query rewriting, decomposition, multi-turnreferences/configure/query-and-conversation.md
Ingestion (text-only, audio, Nemotron Parse, OCR, batch CLI, NV-Ingest, volume mount, performance)references/configure/ingestion.md
Search, retrieval, hybrid search, multi-collection, metadata, filters, Elasticsearch filters, reranker, topK, accuracy/performancereferences/configure/search-and-retrieval.md
LLM/embedding/ranking model changes, vector DB, Milvus/Elasticsearch auth, service keys, model profiles, ports/GPUreferences/configure/models-and-infrastructure.md
Reasoning, thinking mode, reasoning_content, self-reflection, prompts, generation params (tokens, temperature, citations), per-request LLM paramsreferences/configure/reasoning-and-generation.md
Summarizationreferences/configure/summarization.md
Observability (tracing, Zipkin, Grafana, Prometheus)references/configure/observability.md
Multimodal query (image + text)references/configure/multimodal-query.md
Data catalog (collection/document metadata)references/configure/data-catalog.md
User interface (UI settings, reasoning panel, metadata filters)references/configure/user-interface.md
API reference (endpoints, schemas)references/configure/api-reference.md
Evaluation (RAGAS metrics)references/configure/evaluation.md (and skill rag-eval)
MCP server & client, agent toolkitreferences/configure/mcp.md
Migration (version upgrades)references/configure/migration.md
Notebooks (setup and catalog)references/configure/notebooks.md

Configure Flow

  1. Match the user's request to a reference file from the table above.

  2. Detect what's running:

    echo "=== NIM ===" && docker ps --format '{{.Names}}' 2>/dev/null | grep -iE '(nim-llm|nemotron-(vlm-)?embedding|nemotron-ranking|nemotron-vlm|nemotron-3-nano-omni|page-elements|graphic-elements|table-structure|nemotron-ocr)' || echo "NO_LOCAL_NIMS"; echo "=== RAG ===" && docker ps --format '{{.Names}}' 2>/dev/null | grep -iE '(rag-server|ingestor-server|elasticsearch|milvus|seaweedfs|lancedb)' || echo "NO_DOCKER_RAG"; echo "=== K8S ===" && kubectl get pods -n rag 2>/dev/null | head -5 || echo "NO_K8S"; echo "=== LIBRARY ===" && ps aux 2>/dev/null | grep -E '(nvidia_rag|uvicorn.*rag)' | grep -v grep || echo "NO_LIBRARY"
    
  3. Use this table to determine platform, deployment type, and where config lives:

    Local NIMs running?RAG services running?Deployment TypeConfig Location
    Yes (Docker)AnySelf-hosteddeploy/compose/.env
    NoYes (Docker)NVIDIA-hosteddeploy/compose/nvdev.env
    Yes (K8s pods)AnySelf-hostedvalues.yaml (NIM sections)
    NoYes (K8s pods)NVIDIA-hostedvalues.yaml (envVars)
    Library processesLibrary modenotebooks/config.yaml
    NoNoNot runningDeploy first via references/deploy.md

    Tell the user what you detected and ask to confirm. Example: "I see local NIM containers running (nim-llm-ms, nemotron-vlm-embedding-ms) — this is a self-hosted deployment. Config file is deploy/compose/.env. Correct?"

  4. Check current feature state before changing anything — read the config location from step 3, then cross-check the live service:

    • Docker: docker exec rag-server env 2>/dev/null | grep -E "<VAR_NAME>"
    • Helm: kubectl get pod -n rag -l app=rag-server -o jsonpath='{.items[0].spec.containers[0].env}' 2>/dev/null

    If the config file and live service disagree, tell the user the service has stale config and will need a restart.

  5. If the feature needs extra GPUs, check availability against hardware restrictions (see below):

    nvidia-smi --query-gpu=index,name,memory.total,memory.used --format=csv,noheader 2>/dev/null || echo "NO_GPU"
    
  6. Read the reference file and apply changes:

    • Docker: edit the env file (uncomment to enable, re-comment to disable — the env file is the source of truth). Then restart the affected service:
      source <env-file> && docker compose -f deploy/compose/<compose-file> up -d
      
      ServiceCompose File
      rag-serverdocker-compose-rag-server.yaml
      ingestor-serverdocker-compose-ingestor-server.yaml
      Elasticsearch, Milvus, etcd, SeaweedFSvectordb.yaml
      NIM containers (LLM, embedding, ranking, VLM, OCR, parse, audio, extraction)nims.yaml
      guardrailsdocker-compose-nemo-guardrails.yaml
      observability (Grafana, Prometheus, Zipkin)observability.yaml
    • Helm: edit values.yaml, then upgrade: helm upgrade rag <chart> -n rag -f values.yaml
    • Library: edit notebooks/config.yaml, then restart the Python process
  7. Verify:

    • Docker: docker ps --format "table {{.Names}}\t{{.Status}}" | head -20; curl -s http://localhost:8081/v1/health?check_dependencies=true 2>/dev/null | head -1
    • Helm: kubectl get pods -n rag; kubectl rollout status deployment/rag-server -n rag --timeout=120s
    • Library: curl -s http://localhost:8081/v1/health 2>/dev/null | head -1
  8. If restart fails, read references/troubleshoot.md. If multiple features requested, repeat from step 1 for each.

Examples

  • "Deploy RAG" -> route to references/deploy.md.
  • "Enable VLM" -> route to references/configure/vlm.md.
  • "RAG is unhealthy" -> route to references/troubleshoot.md.
  • "Stop RAG" -> route to references/shutdown.md.

Limitations

  • Operational guidance only applies to this RAG Blueprint repository.
  • Live deployment changes require a running Docker, Helm, or library target.
  • Secrets such as NGC_API_KEY must be supplied by the user environment.

Troubleshooting

Error / signalWhat to do
Services are not runningFollow references/deploy.md before configuring features.
Restart or health check failsFollow references/troubleshoot.md.
User requests teardownFollow references/shutdown.md and confirm destructive cleanup.

When User Says "Configure" Without Specifics

Run steps 2–3 above, then read the identified config file to list what's currently enabled:

grep -E "^(export )?(ENABLE_|APP_)" <config-file> 2>/dev/null | sort

Summarize what's running and enabled, then ask which feature to change.


Hardware Restrictions

Read docs/support-matrix.md for current GPU requirements per deployment mode. Read docs/service-port-gpu-reference.md for port mappings and GPU assignments.

GPUFeature Restrictions
B200No VLM, No Guardrails, No Nemotron Parse. May need multi-GPU LLM (LLM_MS_GPU_ID).
RTX PRO 6000No Nemotron Parse. No Audio on Helm.

Frequently asked questions about NVIDIA RAG Blueprint

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