Sider
AssistantsRead pages with Chat, handle browser tasks with Hand and customize your browsing experience with Code. Sider adds an AI workspace to the sites and documents you already use.
Hugging Face’s chat interface for available AI models, backed by the open-source Chat UI project. You can explore the hosted interface or self-host the free software with a local compatible model server.
HuggingChat is the public chat experience from Hugging Face, while Chat UI is the open-source application that powers it. This distinction is useful for readers who want to try available models and for developers who want a configurable interface around their own model service.
The verified free route here is the software: Chat UI can be self-hosted and connected to a local compatible model server. That does not make every hosted model, cloud job or external tool free. Before choosing a setup, identify which part runs on your machine, which provider receives the request and where conversation data is stored.
A small model comparison
A local writing interface
A controlled tool-assisted question
A team interface prototype
Official product image. Click to inspect the details.

Choose hosted use or self-hosting
Select model and data routes
Run a small representative task
Add capabilities deliberately
Example prompt or task: Summarize the supplied passage in five points. Preserve the main claim and its limitations, quote no more than a short phrase, and list questions the passage does not answer.
This is a model-comparison task. The same interface can produce different results when the model, routing or provider changes.
The hosted interface requires an account for use. This listing does not promise unlimited hosted inference or free compute jobs.
Chat UI is available under Apache 2.0 and can be used as free self-hosted software. A local model uses your hardware and electricity; a remote endpoint can charge for inference. Hosting, database services and operational maintenance can also create costs.
Hugging Face’s Inference Providers documentation lists a small monthly free-user credit allowance, currently $0.10, with purchased credits for additional usage. That API allowance is not a promise of unlimited HuggingChat usage. ML Intern jobs and other compute-backed activities require their own budget review.
HuggingChat is the hosted experience; Chat UI is the underlying open-source application.
The Apache-licensed self-hosted interface software.
No. Provider usage and billing must be checked separately.
Yes, the current guide documents compatible local model servers.
Not always. Several legacy integrations were removed from the main branch.
No. It has compute, billing and budget requirements.
Only if the model, tools, storage and configuration also follow the intended data boundary.
Explore platforms, inputs and outputs, licensing, and access requirements.
The current Chat UI main branch has removed older provider-specific integrations, GGUF discovery and legacy web-search helpers. Older tutorials may therefore describe a different version. Use the current compatible-API instructions, or deliberately choose a documented legacy branch if that is the version you intend to maintain.
For a repeatable deployment, record the application revision, model endpoint and database location. A local browser interface is not by itself proof of local inference. Likewise, an open-source interface does not determine the license of downloaded model weights or the privacy terms of a remote provider.
Trace the complete request path: browser, application server, model provider and optional tools. Keep credentials protected and avoid granting an external tool broader access than the task requires.
Review the hosted service’s privacy policy and each connected provider’s conditions. For self-hosting, decide who can access saved conversations and backups; deleting a message in one layer does not necessarily remove copies in external logs or tools.
Reviewed October 3, 2026. Product facts come from the official sources below. Suggested projects, prompts and review methods are FindGoodAI editorial guidance, not measured performance results.
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