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Open WebUI 👋
Open WebUI is an extensible, feature-rich, and user-friendly self-hosted AI platform designed to operate entirely offline. It supports various LLM runners like Ollama and OpenAI-compatible APIs, with built-in inference engine for RAG, making it a powerful AI deployment solution.
Passionate about open-source AI? Join our team →
Tip
Looking for an Enterprise Plan? – Speak with Our Sales Team Today!
Get enhanced capabilities, including custom theming and branding, Service Level Agreement (SLA) support, Long-Term Support (LTS) versions, and more!
For more information, be sure to check out our Open WebUI Documentation.
Key Features of Open WebUI ⭐
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🚀 Effortless Setup: Install seamlessly using Docker or Kubernetes (kubectl, kustomize, or helm) for a hassle-free experience, with support for both
:ollamaand:cudatagged images. -
🤝 Broad Model & API Integration: Connect any OpenAI-compatible API alongside local Ollama models. Point the API URL at LMStudio, GroqCloud, Mistral, OpenRouter, and many more to mix and match providers freely.
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🔐 Granular RBAC & User Groups: Administrators define detailed roles, groups, and permissions, giving each user exactly the access they should have — secure by default, with tailored experiences per group and admin-only rights for sensitive actions like model creation and pulling.
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🧩 Plugin Support — Build Almost Anything: Extend Open WebUI with native plugins, each specialized for its job: Filters to intercept and transform requests and responses, Actions to add custom buttons and interactive flows, Pipes to build entirely custom models and pipelines with custom logic, and Tools to give models real capabilities. With these building blocks you can create custom integrations, rate limits, human-in-the-loop approval popups, data connections, per-user usage budgets, custom interfaces, and much more. If you can imagine it, you can most likely build it.
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📱 Responsive Design & PWA: Enjoy a seamless experience across desktop, laptop, and mobile, with a Progressive Web App that delivers a native app-like feel and offline access on localhost.
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✒️🔢 Full Markdown and LaTeX Support: Elevate your LLM experience with comprehensive Markdown and LaTeX capabilities for enriched interaction.
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🎤📹 Hands-Free Voice/Video Call: Communicate seamlessly with integrated voice and video calls, using multiple Speech-to-Text providers (Local Whisper, OpenAI, Deepgram, Azure) and Text-to-Speech engines (Azure, ElevenLabs, OpenAI, Transformers, WebAPI) for dynamic, interactive chats.
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🛠️ Model Builder: Easily create custom models in the Workspace — build characters and agents, customize chat elements, and import models effortlessly through Open WebUI Community integration.
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💾 Persistent Artifact Storage: Built-in key-value storage API for artifacts, enabling journals, trackers, leaderboards, and collaborative tools with both personal and shared data scopes across sessions.
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📚 Local RAG Integration: Bring Retrieval Augmented Generation right into your chats, backed by your choice of 9 vector databases and multiple content-extraction engines (Tika, Docling, Document Intelligence, Mistral OCR, PaddleOCR-vl, external loaders). Load documents directly into chat or add files to your library and pull them in with the
#command before a query. -
🔍 Web Search for RAG: Search the web through dozens of providers —
SearXNG,Brave Search,Kagi,Mojeek,Tavily,Perplexity,Firecrawl,serpstack,serper,Serply,DuckDuckGo,SearchApi,SerpApi,Bing,Jina,Exa,Sougou,Azure AI Search,Ollama Cloud, and more — injecting results directly into the conversation. -
🌐 Web Browsing Capability: Pull websites into chat with the
#command followed by a URL, or let the model fetch them on its own when it needs to — adding richness and depth to your interactions. -
🎨 Image Generation & Editing: Create and edit images with multiple engines including OpenAI DALL·E, Gemini, ComfyUI (local), and AUTOMATIC1111 (local), supporting both generation and prompt-based editing workflows.
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⚙️ Multi-Model Conversations: Engage several models at once, harnessing their individual strengths in parallel for the best possible responses.
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🗄️ Flexible Database & Storage: Choose SQLite (with optional encryption) or PostgreSQL for your database, and store files locally or on S3, Google Cloud Storage, or Azure Blob Storage for scalable deployments.
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🔍 Advanced Vector Database Support: Pick from 9 vector databases — ChromaDB, PGVector, Qdrant, Milvus, Elasticsearch, OpenSearch, Pinecone, S3Vector, and Oracle 23ai — to tune RAG performance to your stack.
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🔐 Enterprise Authentication & Provisioning: Full LDAP/Active Directory integration, SSO via trusted headers and OAuth providers, and automated user lifecycle management through SCIM 2.0 — for seamless integration with identity providers like Okta, Azure AD, and Google Workspace.
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☁️ Cloud-Native File Integration: Native Google Drive and OneDrive/SharePoint file picking for seamless document import from enterprise cloud storage.
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📊 Production Observability: Built-in OpenTelemetry support for traces, metrics, and logs, plugging into your existing monitoring stack.
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⚖️ Horizontal Scalability: Redis-backed session management and WebSocket support for multi-worker, multi-node deployments behind load balancers.
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🌐🌍 Multilingual Support: Use Open WebUI in your preferred language through our internationalization (i18n) support — and help us add more; we're actively seeking contributors!
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🌟 Continuous Updates: We're committed to improving Open WebUI with regular updates, fixes, and new features.
Want to learn more about Open WebUI's features? Check out our Open WebUI documentation for a comprehensive overview!
We are incredibly grateful for the generous support of our sponsors. Their contributions help us to maintain and improve our project, ensuring we can continue to deliver quality work to our community. Thank you!
How to Install 🚀
Installation via Python pip 🐍
Open WebUI can be installed using pip, the Python package installer. Before proceeding, ensure you're using Python 3.11 to avoid compatibility issues.
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Install Open WebUI: Open your terminal and run the following command to install Open WebUI:
pip install open-webui -
Running Open WebUI: After installation, you can start Open WebUI by executing:
open-webui serve
This will start the Open WebUI server, which you can access at http://localhost:8080
Quick Start with Docker 🐳
Note
Please note that for certain Docker environments, additional configurations might be needed. If you encounter any connection issues, our detailed guide on Open WebUI Documentation is ready to assist you.
Warning
When using Docker to install Open WebUI, make sure to include the
-v open-webui:/app/backend/datain your Docker command. This step is crucial as it ensures your database is properly mounted and prevents any loss of data.
Tip
If you wish to utilize Open WebUI with Ollama included or CUDA acceleration, we recommend utilizing our official images tagged with either
:cudaor:ollama. To enable CUDA, you must install the Nvidia CUDA container toolkit on your Linux/WSL system.
Installation with Default Configuration
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If Ollama is on your computer, use this command:
docker run -d -p 3000:8080 --add-host=host.docker.internal:host-gateway -v open-webui:/app/backend/data --name open-webui --restart always ghcr.io/open-webui/open-webui:main -
If Ollama is on a Different Server, use this command:
To connect to Ollama on another server, change the
OLLAMA_BASE_URLto the server's URL:docker run -d -p 3000:8080 -e OLLAMA_BASE_URL=https://example.com -v open-webui:/app/backend/data --name open-webui --restart always ghcr.io/open-webui/open-webui:main -
To run Open WebUI with Nvidia GPU support, use this command:
docker run -d -p 3000:8080 --gpus all --add-host=host.docker.internal:host-gateway -v open-webui:/app/backend/data --name open-webui --restart always ghcr.io/open-webui/open-webui:cuda
Installation for OpenAI API Usage Only
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If you're only using OpenAI API, use this command:
docker run -d -p 3000:8080 -e OPENAI_API_KEY=your_secret_key -v open-webui:/app/backend/data --name open-webui --restart always ghcr.io/open-webui/open-webui:main
Installing Open WebUI with Bundled Ollama Support
This installation method uses a single container image that bundles Open WebUI with Ollama, allowing for a streamlined setup via a single command. Choose the appropriate command based on your hardware setup:
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With GPU Support: Utilize GPU resources by running the following command:
docker run -d -p 3000:8080 --gpus=all -v ollama:/root/.ollama -v open-webui:/app/backend/data --name open-webui --restart always ghcr.io/open-webui/open-webui:ollama -
For CPU Only: If you're not using a GPU, use this command instead:
docker run -d -p 3000:8080 -v ollama:/root/.ollama -v open-webui:/app/backend/data --name open-webui --restart always ghcr.io/open-webui/open-webui:ollama
Both commands facilitate a built-in, hassle-free installation of both Open WebUI and Ollama, ensuring that you can get everything up and running swiftly.
After installation, you can access Open WebUI at http://localhost:3000. Enjoy! 😄
Other Installation Methods
We offer various installation alternatives, including non-Docker native installation methods, Docker Compose, Kustomize, and Helm. Visit our Open WebUI Documentation or join our Discord community for comprehensive guidance.
Troubleshooting
Encountering connection issues? Our Open WebUI Documentation has got you covered. For further assistance and to join our vibrant community, visit the Open WebUI Discord.
Open WebUI: Server Connection Error
If you're experiencing connection issues, it’s often due to the WebUI docker container not being able to reach the Ollama server at 127.0.0.1:11434 (host.docker.internal:11434) inside the container . Use the --network=host flag in your docker command to resolve this. Note that the port changes from 3000 to 8080, resulting in the link: http://localhost:8080.
Example Docker Command:
docker run -d --network=host -v open-webui:/app/backend/data -e OLLAMA_BASE_URL=http://127.0.0.1:11434 --name open-webui --restart always ghcr.io/open-webui/open-webui:main
Keeping Your Docker Installation Up-to-Date
Check our Updating Guide available in our Open WebUI Documentation.
Using the Dev Branch 🌙
Warning
The
:devbranch contains the latest unstable features and changes. Use it at your own risk as it may have bugs or incomplete features.
If you want to try out the latest bleeding-edge features and are okay with occasional instability, you can use the :dev tag like this:
docker run -d -p 3000:8080 -v open-webui:/app/backend/data --name open-webui --add-host=host.docker.internal:host-gateway --restart always ghcr.io/open-webui/open-webui:dev
Offline Mode
If you are running Open WebUI in an offline environment, you can set the HF_HUB_OFFLINE environment variable to 1 to prevent attempts to download models from the internet.
export HF_HUB_OFFLINE=1
What's Next? 🌟
Discover upcoming features on our roadmap in the Open WebUI Documentation.
License 📜
This project contains code under multiple licenses. The current codebase includes components licensed under the Open WebUI License with an additional requirement to preserve the "Open WebUI" branding, as well as prior contributions under their respective original licenses. For a detailed record of license changes and the applicable terms for each section of the code, please refer to LICENSE_HISTORY. For complete and updated licensing details, please see the LICENSE and LICENSE_HISTORY files.
Support 💬
If you have any questions, suggestions, or need assistance, please open an issue or join our Open WebUI Discord community to connect with us! 🤝
Security 🛡️
If you believe you've found a security vulnerability — or something that isn't strictly a vulnerability but shouldn't be disclosed publicly — reach out confidentially through our responsible disclosure program on GitHub. We accept reports only through GitHub, not through any other platform. Thank you for helping us keep Open WebUI secure!
Star History
Created by Timothy Jaeryang Baek - Let's make Open WebUI even more amazing together! 💪

