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qdrant Skill

AI Agent SkillCode Search & MemoryPythonOpen source

Vector search engine for production RAG systems. Published by NousResearch in hermes-agent.

Decision snapshot

Is this a fit?

Best for

Database workflows, Deployment, Data analysis, Research

Works with

Compatibility not yet detected.

Access

Permission behavior not yet detected.

Setup

Copy skill directory

Project health

29 days ago · MIT license

Considerations

No specific cautions were detected. Review the source and requested permissions before installing.

What is qdrant Skill?

Vector search engine for production RAG systems. Published by NousResearch in hermes-agent. This profile combines repository metadata with install, compatibility, and usage signals so developers can quickly decide whether it fits their agent workflow before opening the source repository.

Trust signal
95/100
Maintenance signal
90/100
Adoption signal
100/100

Automated repository signals based on public metadata such as recency, license, installation evidence, and adoption. These are not a security audit or endorsement. See how SkillIndex evaluates profiles.

Key capabilities

  • Includes SKILL.md support
  • Reusable instructions support
  • Database workflows
  • Deployment
  • Data analysis
  • Research
  • Database workflows use cases

Declared skill metadata

  • Declared author: Orchestra Research
  • Declared license: MIT
  • Source file: optional-skills/mlops/qdrant/SKILL.md

These fields retain source and confidence evidence from the indexed SKILL.md.

Compatibility and setup

Copy skill directory
  • Install or run with Copy skill directory

When to use qdrant Skill

  • Use it for database workflows.
  • Use it for deployment.
  • Use it for data analysis.
  • Use it for research.

Built with

PythonCopy skill directory

Editorial notes

Source

  • Creator: NousResearch
  • Repository: NousResearch/hermes-agent
  • Skill file: optional-skills/mlops/qdrant/SKILL.md

What it does

Vector search engine for production RAG systems.

Skill instructions

Qdrant - Vector Similarity Search Engine High-performance vector database written in Rust for production RAG and semantic search. When to use Qdrant Use Qdrant when: - Building production RAG systems requiring low latency - Need hybrid search (vectors + metadata filtering) - Require horizontal scaling with sharding/replication - Want on-premise deployment with full data control - Need multi-vector storage per record (dense + sparse) - Building real-time recommendation systems Key features: - Rust-powered: Memory-safe, high performance - Rich filtering: Filter by any payload field during search - Multiple vectors: Dense, sparse, multi-dense per point - Quantization: Scalar, product, binary for memory efficiency - Distributed: Raft consensus, sharding, replication - REST + gRPC: Both APIs with full feature parity Use alternatives instead: - Chroma: Simpler setup, embedded use cases - FAISS: Maximum raw speed, research/batch processing - Pinecone: Fully managed, zero ops preferred - Weavi

Verified compatibility and discovery

Frequently asked questions

What is qdrant?

qdrant is a open-source AI agent skill with Copy skill directory. Vector search engine for production RAG systems.

Who is qdrant best for?

qdrant is best for reusing agent instructions, scripts, and references, database workflows, deployment workflows, data analysis workflows.

How do I install qdrant?

Install or run qdrant using Copy skill directory. Check qdrant for the latest setup command.

Is qdrant actively maintained?

qdrant may need a closer maintenance check before production use.

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Stars
228,028
Forks
44,793
Last commit
29 days ago
Last verified
Aug 13, 2026
Metadata fetched
Aug 13, 2026
Repository age
1 year
License
MIT

Project health auto-fetched from the source repository.

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Review this source-backed profile, send a correction with evidence, or link to it from your documentation. Claims verify your relationship to the project; profile facts still require source evidence and editorial review.

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