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* Rewrite security page intro to be feature-forward Replaces the generic opening paragraph with one that names each security feature (API key auth, read-only keys, JWT RBAC, network binding, TLS, audit logging) and links directly to their sections, so scanning readers see the full capability surface before hitting the warning block. Also updates the checklist items to surface read-only keys and JWT RBAC as explicit options under Authentication. Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com> * Add Security FAQ section to Qdrant Fundamentals Adds three new Q&A entries covering default security posture, read-only API keys, and JWT collection-scoped access control — the exact questions users ask in Discord. Also adds Security to the page nav table and fixes the heading depth on the collection-per-user entry (## → ###). Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com> * Add Security section to production checklist Inserts a new section 2 covering the five key security steps — API key auth, read-only keys, JWT access control, TLS, and network binding — with direct links to the Security page. Renumbers existing sections 2–4 to 3–5. Closes the gap where a user following the checklist step-by-step could go to production with an open, unauthenticated instance. Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com> * Link production checklist from both quickstart pages Adds a production checklist callout to the "Next Steps" section of the local quickstart and a bullet to the "What's Next?" section of the cloud quickstart, so users completing either tutorial have a clear path to production readiness. Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com> * Make code snippets testable * Lead Security page by listing all the features; Rename API keys->Admin API keys, and 'Granular Access Control with JWT' section into 'Granular Access API Keys' * Update links * Update meta description * Fix C# snippet --------- Co-authored-by: Claude Sonnet 4.6 <noreply@anthropic.com>
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| Documentation | Build with Qdrant: install, run, and scale a vector search engine across self-hosted, Cloud, Hybrid Cloud, and Private Cloud deployments. | Official Qdrant documentation for vector search and retrieval — quickstarts, deployment guides, integrations, and references for self-hosted and Qdrant Cloud. | 2 | true | false |
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THIS CONTENT IS GOING TO BE IGNORED FOR NOW
Documentation
Qdrant is an AI-native vector search and a semantic search engine. You can use it to extract meaningful information from unstructured data. Want to see how it works? Clone this repo now and build a search engine in five minutes.
| Cloud Quickstart | Local Quickstart |
Ready to start developing?
Qdrant is open-source and can be self-hosted. However, the quickest way to get started is with our free tier on Qdrant Cloud. It scales easily and provides an UI where you can interact with data.
Qdrant's most popular features:
| Filterable HNSW Single-stage payload filtering |
Recommendations & Context Search Exploratory advanced search |
Pure-Vector Hybrid Search Full text and semantic search in one |
| Multitenancy Payload-based partitioning |
Custom Sharding For data isolation and distribution |
Role Based Access Control Secure JWT-based access |
| Quantization Compress data for drastic speedups |
Multivector Support For ColBERT late interaction |
Built-in IDF Advanced similarity calculation |
Developer guidebooks:
| A Complete Guide to Filtering in Vector Search Beginner & advanced examples showing how to improve precision in vector search. |
Building Hybrid Search with Query API Build a pure vector-based hybrid search system with our new fusion feature. |
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| Multitenancy and Sharding: Best Practices Combine two powerful features for complete data isolation and scaling. |
Benefits of Binary Quantization in Vector Search Compress data points while retaining essential meaning for extreme search performance. |
