Aigur vs BerriAI/litellm - GitHub

Side-by-side comparison · Updated October 2026

 AigurAigurBerriAI/litellm - GitHubBerriAI/litellm - GitHub
DescriptionAIGUR Generative AI for Teams offers a comprehensive platform to build, collaborate, deploy, and manage Generative AI flows. With a start-for-free model that requires no credit card, AIGUR makes it easy to prototype rapidly using a NoCode editor, collaborate with tools akin to Figma, gather feedback through 'mini-apps', integrate into applications easily, monitor performances, manage flow health, and fine-tune deployments. A perfect tool for teams looking to innovate with AI.LiteLLM is an AI gateway and Python SDK from Berrie AI Incorporated, published in the BerriAI GitHub repository. The SDK provides a common interface for model calls inside Python applications. The proxy gateway centralizes access for a team, with virtual keys, model routing, spend tracking, budgets and an administration interface. The official documentation lists support for more than 100 model providers. Supported endpoints and features vary by integration, so verify your model’s streaming, tool-calling, image, audio or embedding requirements. The router supports retries, fallbacks and load balancing; observability integrations can send request data to tools such as Langfuse, LangSmith and OpenTelemetry. LiteLLM also provides an MCP gateway. It can connect upstream servers using Streamable HTTP, SSE or stdio, expose tools through a fixed gateway endpoint, and scope access by key, team or organization. This requires configuring the upstream servers and authentication; the gateway does not automatically grant access to third-party tools. Agent-to-agent integrations are documented separately. The open-source offering has no software license fee for self-hosting. Code outside the enterprise directory is MIT-licensed, while enterprise code has separate terms. Enterprise pricing is quoted by annual gateway request capacity, deployment architecture and support needs, rather than a per-token license charge. Model-provider charges and infrastructure costs still apply. Enterprise adds controls and support such as SSO, SCIM, audit logs and service-level agreements. Compare New API for another self-hosted gateway with provider-channel management and usage accounting. Evaluate a representative workload, inspect request logging and secret handling, test budget and failure behavior, and decide whether SDK integration or a shared gateway best fits your application.
CategoryGenerative CodeDeveloper Tools
RatingNo reviewsNo reviews
PricingFreemiumOpen Source
Starting PriceFreeN/A
Plans
  • Free Plan — Free
  • Startup Plan — $15/mo
  • Enterprise Plan — Contact for pricing
  • Community Plan — Pricing unavailable
  • Developer Plan — Pricing unavailable
  • Research Plan — Pricing unavailable
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Use Cases
  • Startups
  • Product developers
  • Design teams
  • Entrepreneurs
  • Developers
  • Enterprises
  • Startups
  • Educational Institutions
Tags
Generative AINoCode editorcollaboratedeploymanage
AI gatewayPython SDKLLM routingMCP gatewayvirtual keys
Features
Prototype rapidly with a NoCode editor
Use predefined templates or start from scratch
Drag and drop AI blocks for configuration
Collaborate with Figma-like tools
Share 'mini-apps' for feedback
Easily integrate flows into applications
Monitor flows' performances and costs
Manage flow health by banning abusers
Adjust and deploy flows without downtime
Rollback deployment if necessary
Python SDK for direct application integration
Shared AI proxy gateway and administration UI
More than 100 documented model-provider integrations
Virtual keys, users, teams, budgets and rate limits
Spend tracking and observability integrations
Router retries, fallbacks and load balancing
MCP gateway for Streamable HTTP, SSE and stdio upstreams
Key, team and organization MCP permissions
Separate enterprise identity, audit and support features
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