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TokenHub

AI InfrastructureFree

TokenHub - Private AI Gateway for Model Governance

Last updated Aug 16, 2026

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What is TokenHub?

TokenHub is an open-source AI developer tool for private AI model access, routing, cost attribution, and governance. It is useful when a team needs practical control over model workflows instead of another opaque web app. The project is published on GitHub, ships with a public README, and is designed for builders who are comfortable running code locally or inside their own infrastructure. The README lists native adapters for Codex subscriptions, OpenAI, Azure OpenAI, Anthropic, Gemini, DeepSeek, Qwen, local vLLM/Ollama, and custom OpenAI-compatible upstreams. It documents project-scoped API keys, routing policies, usage analytics, RBAC, audit trails, SQLite-first deployment, and PostgreSQL support for multi-instance setups. The main value is that TokenHub turns a messy AI workflow into something operators can inspect. Platform engineers, internal AI teams, and enterprise administrators can use it to see what happened, repeat a workflow, and make safer decisions before spending more tokens or giving an agent more access. The repository documents the core setup path and keeps the implementation visible, which matters for teams that need to review privacy, deployment, and maintenance tradeoffs before adopting a tool. Setup is aimed at technical users. The documented quick start includes a native Linux installer and a Docker Compose path from a repository checkout. That makes TokenHub a better fit for engineering teams, AI infrastructure owners, and power users than for nontechnical buyers who expect a hosted account and a sales-led onboarding flow. The upside is control: the tool can run close to the data, follow the repository's documented configuration, and avoid sending extra telemetry to a third-party product unless the operator adds it. For OpenTools readers, the most important question is whether the project solves a real agent or model-operations pain. TokenHub does. It sits in the practical layer around LLMs: access, logs, visual work, training recipes, or a desktop workspace. That layer is where many AI teams lose time because the model itself is only one part of the system. A small utility that makes requests traceable, costs visible, screenshots testable, or local sessions easier to manage can save more time than switching models. Pricing is simple because the repository is open source. The GitHub repository is Apache-2.0 licensed. There may still be infrastructure costs for the models, GPUs, APIs, or machines that a user connects to it, but TokenHub itself does not require a listed SaaS subscription. Teams should still review the README, license, release history, and security posture before using it in production. The strongest use case is a builder or platform team that wants a transparent component it can audit, modify, and run with its existing AI stack. The practical takeaway: try TokenHub when the workflow described in its README matches a current bottleneck. It is not a general chatbot and it is not a closed managed service. It is a focused developer tool in the Go and Docker Compose ecosystem that can be evaluated from source, tested locally, and adopted gradually. That makes it a good candidate for pilots where a team wants measurable gains without committing to a new vendor platform.

TokenHub's Top Features

Key capabilities that make TokenHub stand out.

OpenAI-compatible and Anthropic-compatible model APIs

Provider channels for OpenAI, Azure OpenAI, Anthropic, Gemini, DeepSeek, Qwen, local vLLM/Ollama, and custom upstreams

Routing policies with priority, weight, failover order, and route health diagnostics

Project-scoped API key management with quotas and concurrency controls

Usage analytics and request logs by user, project, team, model, and cost center

OAuth/OIDC identity sources, RBAC, and audit trails

SQLite-first deployment with PostgreSQL support for scaled instances

Use Cases

Who benefits most from this tool.

Platform engineers

Run a private gateway that routes requests across several model providers while keeping keys, policies, and logs under internal control.

AI team leads

Attribute model spend by project, team, user, and model instead of reconciling provider invoices after the fact.

Enterprise administrators

Apply identity, RBAC, audit, and quota controls before broad teams call external or local model APIs.

Explore Top AI Use Cases

Tags

ai-gatewaymodel-routingllmopsgoopenai-compatibleanthropicgeminideepseekgovernancecost-tracking

TokenHub's Pricing

Free plan available

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Frequently Asked Questions

What is TokenHub?
TokenHub is an open-source private gateway for unifying AI model access, routing, governance, request logs, and cost attribution.
Which providers does TokenHub mention?
Its README mentions Codex subscriptions, OpenAI, Azure OpenAI, Anthropic, Gemini, DeepSeek, Qwen, local vLLM/Ollama, and custom OpenAI-compatible upstreams.
How is TokenHub deployed?
The README documents a native Linux systemd installer and a Docker Compose deployment path from a repository checkout.
Is TokenHub free?
The repository is Apache-2.0 licensed. Users still pay for their own infrastructure and upstream model usage.
Who should try TokenHub?
Teams that need private model routing, project keys, audit logs, and cost attribution across several AI providers should evaluate it.

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