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commit 440bc027251d8180174d762d83d271d0f7b68cc5
Author: Krrish Dholakia <krrishdholakia@gmail.com>
Date:   Fri Jun 20 23:04:11 2025 -0700

    fix: fix check

commit 89a7451cb9ee26ff9f642335714dcc6f449d1fc2
Author: Krrish Dholakia <krrishdholakia@gmail.com>
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    fix: fix test

commit 1322e3b3497e5d334fdcaa18f0cf7a98ea758df4
Author: Krrish Dholakia <krrishdholakia@gmail.com>
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    style: add more tooltips

commit 172738b98b7864aabcacf3334a394098b300283f
Author: Krrish Dholakia <krrishdholakia@gmail.com>
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    feat(team_member_view.tsx): add a tooltip

commit 895eb28deb9127985e30b5e859e5bca8530951c9
Author: Krrish Dholakia <krrishdholakia@gmail.com>
Date:   Fri Jun 20 18:46:49 2025 -0700

    fix(teams.tsx): support setting team member budget on create

commit 003cc54a6dd0f65030c4f39a8487adc771b62e11
Author: Krrish Dholakia <krrishdholakia@gmail.com>
Date:   Fri Jun 20 18:40:49 2025 -0700

    fix(team_member_view.tsx): style improvements

commit a627a044f21df788f80d92a4081212072be91632
Author: Krrish Dholakia <krrishdholakia@gmail.com>
Date:   Fri Jun 20 18:40:01 2025 -0700

    fix(team_member_view.tsx): handle scientific notation in string

commit c5a3b7bd8419f6394e1b490849555d02d473baed
Author: Krrish Dholakia <krrishdholakia@gmail.com>
Date:   Fri Jun 20 18:34:25 2025 -0700

    feat(team_membership_view.tsx): show team member spend + max budget on UI

commit e986d12ad5b07c676f4cac5e16745939d7473dee
Author: Krrish Dholakia <krrishdholakia@gmail.com>
Date:   Fri Jun 20 18:28:06 2025 -0700

    feat(team_member_view.tsx): show team member spend + budget on team info

commit 8e398607b25f8a8f0bab41964810b5dd27c5e3f2
Author: Krrish Dholakia <krrishdholakia@gmail.com>
Date:   Fri Jun 20 18:18:16 2025 -0700

    feat(team_info.tsx): show team member budget on team info

commit 1f56886b5913dafefc0c00fbe741c0c9c01144a6
Author: Krrish Dholakia <krrishdholakia@gmail.com>
Date:   Fri Jun 20 18:15:30 2025 -0700

    feat(team_endpoints.py): get team budget table on team info

    allows user to see max budget set for team members

commit 0a4320bbfa406c24ad32a420f82152da7bdd7323
Author: Krrish Dholakia <krrishdholakia@gmail.com>
Date:   Fri Jun 20 18:10:06 2025 -0700

    feat(team_endpoints.py): return team member budget on team info

    allows ui to display this to admin / team member

commit 6a4e29f87b333ae9977e8f878960e63becd89150
Author: Krrish Dholakia <krrishdholakia@gmail.com>
Date:   Fri Jun 20 17:57:20 2025 -0700

    fix(team_endpoints.py): support updating team budget on UI

commit 53f0fff34032977433dfe6935ce0a684a4141fd8
Author: Krrish Dholakia <krrishdholakia@gmail.com>
Date:   Fri Jun 20 17:38:17 2025 -0700

    feat(proxy/_types.py): return team member spend

    update pydantic object to include spend

    Allows showing spend of team member within team on UI

commit ef2a1a43ecf7fecfb904042cbf47b3d56246edcb
Author: Krrish Dholakia <krrishdholakia@gmail.com>
Date:   Fri Jun 20 16:31:42 2025 -0700

    feat(team_endpoints.py): support 'team_member_budget' param on `/team/update`

    enables budget working across all team members

commit 512999f1249b00a02a30f049a0cfa36e829ff989
Author: Krrish Dholakia <krrishdholakia@gmail.com>
Date:   Fri Jun 20 16:20:04 2025 -0700

    test: add unit tests for default team member budget

commit 90fa3f61a2d63e12b9f3e1da9775f5c8b7294b5f
Author: Krrish Dholakia <krrishdholakia@gmail.com>
Date:   Fri Jun 20 15:37:51 2025 -0700

    feat(team_endpoints.py): support using default team member budget id, if set

    allows all team members to use the same budget id

commit acef5324b1a0935a482c71060f610c3d8823e8c3
Author: Krrish Dholakia <krrishdholakia@gmail.com>
Date:   Fri Jun 20 15:22:30 2025 -0700

    feat(team_endpoints.py): support `team_member_budget` param on `/team/new`

    Allow creating 1 budget for all users within team (makes it easier to increase/reduce budget if needed for all team members)

commit 2e867ac70fbd8768e7c27cf3b078e6dc10e566b9
Author: Krrish Dholakia <krrishdholakia@gmail.com>
Date:   Fri Jun 20 13:45:06 2025 -0700

    fix(ui_sso.py): ensure user is added to team, if set via default internal settings

    allows users signed up via SSO to be added to default team
2025-06-20 23:11:53 -07:00
.circleci [Security] - Add Trivy Security Scan for UI + Docs folder - remove all vulnerabilities (#11778) 2025-06-16 17:13:19 -07:00
.devcontainer
.github build(ghcr_deploy.yml): add rc to all docker images 2025-06-14 17:16:46 -07:00
ci_cd install prisma migration files - connects litellm proxy to litellm's prisma migration files (#9637) 2025-03-29 15:27:09 -07:00
cookbook Add new model provider Novita AI (#7582) (#9527) 2025-05-12 21:49:30 -07:00
db_scripts Litellm dev contributor prs 01 31 2025 (#8168) 2025-02-01 09:05:20 -08:00
deploy Add deployment annotations (#11849) 2025-06-19 20:11:31 -07:00
dist Litellm dev 01 10 2025 p2 (#7679) 2025-01-10 21:50:53 -08:00
docker fixes build from pip 2025-06-14 09:03:50 -07:00
docs/my-website [Feat] MCP - Allow connecting to MCP with authentication headers + Allow clients to specify MCP headers (#11890) (#11891) 2025-06-19 20:07:08 -07:00
enterprise Prometheus - fix request increment + add route tracking for streaming requests (#11731) 2025-06-14 16:26:48 -07:00
litellm Squashed commit of the following: 2025-06-20 23:11:53 -07:00
litellm-js (UI) fix adding Vertex Models (#8129) 2025-01-30 21:11:08 -08:00
litellm-proxy-extras build: update with new migration file 2025-06-18 23:07:13 -07:00
tests Squashed commit of the following: 2025-06-20 23:11:53 -07:00
ui/litellm-dashboard Squashed commit of the following: 2025-06-20 23:11:53 -07:00
.dockerignore Add back in non root image fixes (#7781) (#7795) 2025-01-15 21:49:03 -08:00
.env.example Add new model provider Novita AI (#7582) (#9527) 2025-05-12 21:49:30 -07:00
.flake8
.git-blame-ignore-revs
.gitattributes
.gitignore feat: add .cursor to .gitignore 2025-06-08 14:35:50 -06:00
.pre-commit-config.yaml docs(index.md): update release note with rc patch 2025-06-17 22:55:50 -07:00
AGENTS.md Add AGENTS.md (#11461) 2025-06-05 16:29:28 -07:00
codecov.yaml
CONTRIBUTING.md Update Makefile and add CONTRIBUTING.md to guide contributors on best practices and submission process (#11485) 2025-06-06 14:19:28 -07:00
docker-compose.yml Fix #9295 docker-compose healthcheck test uses curl but curl is not in the image (#9737) 2025-05-26 10:19:59 -07:00
Dockerfile adds tzdata (#10796) (#11052) 2025-05-22 22:36:19 -07:00
index.yaml
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mcp_servers.json add well known MCP servers (#11209) 2025-05-28 10:46:26 -07:00
model_prices_and_context_window.json [Feat] Add Azure Codex Models on LiteLLM + new /v1 preview Azure OpenAI API (#11934) 2025-06-20 18:08:44 -07:00
package-lock.json
package.json
poetry.lock build: update with new migration file 2025-06-18 23:07:13 -07:00
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proxy_server_config.yaml build: update model in test (#10706) 2025-05-09 13:33:11 -07:00
pyproject.toml bump: version 1.72.8 → 1.72.9 2025-06-19 22:35:01 -07:00
pyrightconfig.json
README.md Update README.md (#11586) 2025-06-10 09:32:11 -07:00
render.yaml
requirements.txt bumps the anthropic package (#11851) 2025-06-19 20:11:04 -07:00
ruff.toml
schema.prisma feat: add LiteLLM_HealthCheckTable model to schema for health monitoring (#11677) 2025-06-18 08:37:40 -07:00
security.md Discard duplicate sentence (#10231) 2025-04-23 07:05:29 -07:00
test_script.py build(model_prices_and_context_window.json): mark all gemini-2.5 mode… (#11907) 2025-06-19 21:07:25 -07:00
test_url_encoding.py fix(internal_user_endpoints.py): support user with + in email on us… (#11601) 2025-06-10 22:13:10 -07:00

🚅 LiteLLM

Deploy to Render Deploy on Railway

Call all LLM APIs using the OpenAI format [Bedrock, Huggingface, VertexAI, TogetherAI, Azure, OpenAI, Groq etc.]

LiteLLM Proxy Server (LLM Gateway) | Hosted Proxy (Preview) | Enterprise Tier

PyPI Version Y Combinator W23 Whatsapp Discord

LiteLLM manages:

  • Translate inputs to provider's completion, embedding, and image_generation endpoints
  • Consistent output, text responses will always be available at ['choices'][0]['message']['content']
  • Retry/fallback logic across multiple deployments (e.g. Azure/OpenAI) - Router
  • Set Budgets & Rate limits per project, api key, model LiteLLM Proxy Server (LLM Gateway)

Jump to LiteLLM Proxy (LLM Gateway) Docs
Jump to Supported LLM Providers

🚨 Stable Release: Use docker images with the -stable tag. These have undergone 12 hour load tests, before being published. More information about the release cycle here

Support for more providers. Missing a provider or LLM Platform, raise a feature request.

Usage (Docs)

Important

LiteLLM v1.0.0 now requires openai>=1.0.0. Migration guide here
LiteLLM v1.40.14+ now requires pydantic>=2.0.0. No changes required.

Open In Colab
pip install litellm
from litellm import completion
import os

## set ENV variables
os.environ["OPENAI_API_KEY"] = "your-openai-key"
os.environ["ANTHROPIC_API_KEY"] = "your-anthropic-key"

messages = [{ "content": "Hello, how are you?","role": "user"}]

# openai call
response = completion(model="openai/gpt-4o", messages=messages)

# anthropic call
response = completion(model="anthropic/claude-3-sonnet-20240229", messages=messages)
print(response)

Response (OpenAI Format)

{
    "id": "chatcmpl-565d891b-a42e-4c39-8d14-82a1f5208885",
    "created": 1734366691,
    "model": "claude-3-sonnet-20240229",
    "object": "chat.completion",
    "system_fingerprint": null,
    "choices": [
        {
            "finish_reason": "stop",
            "index": 0,
            "message": {
                "content": "Hello! As an AI language model, I don't have feelings, but I'm operating properly and ready to assist you with any questions or tasks you may have. How can I help you today?",
                "role": "assistant",
                "tool_calls": null,
                "function_call": null
            }
        }
    ],
    "usage": {
        "completion_tokens": 43,
        "prompt_tokens": 13,
        "total_tokens": 56,
        "completion_tokens_details": null,
        "prompt_tokens_details": {
            "audio_tokens": null,
            "cached_tokens": 0
        },
        "cache_creation_input_tokens": 0,
        "cache_read_input_tokens": 0
    }
}

Call any model supported by a provider, with model=<provider_name>/<model_name>. There might be provider-specific details here, so refer to provider docs for more information

Async (Docs)

from litellm import acompletion
import asyncio

async def test_get_response():
    user_message = "Hello, how are you?"
    messages = [{"content": user_message, "role": "user"}]
    response = await acompletion(model="openai/gpt-4o", messages=messages)
    return response

response = asyncio.run(test_get_response())
print(response)

Streaming (Docs)

liteLLM supports streaming the model response back, pass stream=True to get a streaming iterator in response.
Streaming is supported for all models (Bedrock, Huggingface, TogetherAI, Azure, OpenAI, etc.)

from litellm import completion
response = completion(model="openai/gpt-4o", messages=messages, stream=True)
for part in response:
    print(part.choices[0].delta.content or "")

# claude 2
response = completion('anthropic/claude-3-sonnet-20240229', messages, stream=True)
for part in response:
    print(part)

Response chunk (OpenAI Format)

{
    "id": "chatcmpl-2be06597-eb60-4c70-9ec5-8cd2ab1b4697",
    "created": 1734366925,
    "model": "claude-3-sonnet-20240229",
    "object": "chat.completion.chunk",
    "system_fingerprint": null,
    "choices": [
        {
            "finish_reason": null,
            "index": 0,
            "delta": {
                "content": "Hello",
                "role": "assistant",
                "function_call": null,
                "tool_calls": null,
                "audio": null
            },
            "logprobs": null
        }
    ]
}

Logging Observability (Docs)

LiteLLM exposes pre defined callbacks to send data to Lunary, MLflow, Langfuse, DynamoDB, s3 Buckets, Helicone, Promptlayer, Traceloop, Athina, Slack

from litellm import completion

## set env variables for logging tools (when using MLflow, no API key set up is required)
os.environ["LUNARY_PUBLIC_KEY"] = "your-lunary-public-key"
os.environ["HELICONE_API_KEY"] = "your-helicone-auth-key"
os.environ["LANGFUSE_PUBLIC_KEY"] = ""
os.environ["LANGFUSE_SECRET_KEY"] = ""
os.environ["ATHINA_API_KEY"] = "your-athina-api-key"

os.environ["OPENAI_API_KEY"] = "your-openai-key"

# set callbacks
litellm.success_callback = ["lunary", "mlflow", "langfuse", "athina", "helicone"] # log input/output to lunary, langfuse, supabase, athina, helicone etc

#openai call
response = completion(model="openai/gpt-4o", messages=[{"role": "user", "content": "Hi 👋 - i'm openai"}])

LiteLLM Proxy Server (LLM Gateway) - (Docs)

Track spend + Load Balance across multiple projects

Hosted Proxy (Preview)

The proxy provides:

  1. Hooks for auth
  2. Hooks for logging
  3. Cost tracking
  4. Rate Limiting

📖 Proxy Endpoints - Swagger Docs

Quick Start Proxy - CLI

pip install 'litellm[proxy]'

Step 1: Start litellm proxy

$ litellm --model huggingface/bigcode/starcoder

#INFO: Proxy running on http://0.0.0.0:4000

Step 2: Make ChatCompletions Request to Proxy

Important

💡 Use LiteLLM Proxy with Langchain (Python, JS), OpenAI SDK (Python, JS) Anthropic SDK, Mistral SDK, LlamaIndex, Instructor, Curl

import openai # openai v1.0.0+
client = openai.OpenAI(api_key="anything",base_url="http://0.0.0.0:4000") # set proxy to base_url
# request sent to model set on litellm proxy, `litellm --model`
response = client.chat.completions.create(model="gpt-3.5-turbo", messages = [
    {
        "role": "user",
        "content": "this is a test request, write a short poem"
    }
])

print(response)

Proxy Key Management (Docs)

Connect the proxy with a Postgres DB to create proxy keys

# Get the code
git clone https://github.com/BerriAI/litellm

# Go to folder
cd litellm

# Add the master key - you can change this after setup
echo 'LITELLM_MASTER_KEY="sk-1234"' > .env

# Add the litellm salt key - you cannot change this after adding a model
# It is used to encrypt / decrypt your LLM API Key credentials
# We recommend - https://1password.com/password-generator/ 
# password generator to get a random hash for litellm salt key
echo 'LITELLM_SALT_KEY="sk-1234"' >> .env

source .env

# Start
docker-compose up

UI on /ui on your proxy server ui_3

Set budgets and rate limits across multiple projects POST /key/generate

Request

curl 'http://0.0.0.0:4000/key/generate' \
--header 'Authorization: Bearer sk-1234' \
--header 'Content-Type: application/json' \
--data-raw '{"models": ["gpt-3.5-turbo", "gpt-4", "claude-2"], "duration": "20m","metadata": {"user": "ishaan@berri.ai", "team": "core-infra"}}'

Expected Response

{
    "key": "sk-kdEXbIqZRwEeEiHwdg7sFA", # Bearer token
    "expires": "2023-11-19T01:38:25.838000+00:00" # datetime object
}

Supported Providers (Docs)

Provider Completion Streaming Async Completion Async Streaming Async Embedding Async Image Generation
openai
Meta - Llama API
azure
AI/ML API
aws - sagemaker
aws - bedrock
google - vertex_ai
google - palm
google AI Studio - gemini
mistral ai api
cloudflare AI Workers
cohere
anthropic
empower
huggingface
replicate
together_ai
openrouter
ai21
baseten
vllm
nlp_cloud
aleph alpha
petals
ollama
deepinfra
perplexity-ai
Groq AI
Deepseek
anyscale
IBM - watsonx.ai
voyage ai
xinference [Xorbits Inference]
FriendliAI
Galadriel
Novita AI
Featherless AI
Nebius AI Studio

Read the Docs

Contributing

Interested in contributing? Contributions to LiteLLM Python SDK, Proxy Server, and LLM integrations are both accepted and highly encouraged!

Quick start: git clonemake install-devmake formatmake lintmake test-unit

See our comprehensive Contributing Guide (CONTRIBUTING.md) for detailed instructions.

Enterprise

For companies that need better security, user management and professional support

Talk to founders

This covers:

  • Features under the LiteLLM Commercial License:
  • Feature Prioritization
  • Custom Integrations
  • Professional Support - Dedicated discord + slack
  • Custom SLAs
  • Secure access with Single Sign-On

Contributing

We welcome contributions to LiteLLM! Whether you're fixing bugs, adding features, or improving documentation, we appreciate your help.

Quick Start for Contributors

git clone https://github.com/BerriAI/litellm.git
cd litellm
make install-dev    # Install development dependencies
make format         # Format your code
make lint           # Run all linting checks
make test-unit      # Run unit tests

For detailed contributing guidelines, see CONTRIBUTING.md.

Code Quality / Linting

LiteLLM follows the Google Python Style Guide.

Our automated checks include:

  • Black for code formatting
  • Ruff for linting and code quality
  • MyPy for type checking
  • Circular import detection
  • Import safety checks

Run all checks locally:

make lint           # Run all linting (matches CI)
make format-check   # Check formatting only

All these checks must pass before your PR can be merged.

Support / talk with founders

Why did we build this

  • Need for simplicity: Our code started to get extremely complicated managing & translating calls between Azure, OpenAI and Cohere.

Contributors

Run in Developer mode

Services

  1. Setup .env file in root
  2. Run dependant services docker-compose up db prometheus

Backend

  1. (In root) create virtual environment python -m venv .venv
  2. Activate virtual environment source .venv/bin/activate
  3. Install dependencies pip install -e ".[all]"
  4. Start proxy backend uvicorn litellm.proxy.proxy_server:app --host localhost --port 4000 --reload

Frontend

  1. Navigate to ui/litellm-dashboard
  2. Install dependencies npm install
  3. Run npm run dev to start the dashboard