modelroute
OfficialClick on "Install Server".
Wait a few minutes for the server to deploy. Once ready, it will show a "Started" state.
In the chat, type
@followed by the MCP server name and your instructions, e.g., "@modelroutescan this directory for TODO and FIXME issues"
That's it! The server will respond to your query, and you can continue using it as needed.
Here is a step-by-step guide with screenshots.
MODELROUTE
Local model router / proxy across Ollama, vLLM, and cloud with fallback
AI Agents & LLMOps โ build, route, evaluate, and secure agents.
pip install cognis-modelroute
modelroute scan . # โ prioritized findings in seconds๐ Example output
Real, reproducible output from the tool โ runs offline:
$ modelroute-emit --version
modelroute 0.1.0$ modelroute-emit --help
usage: modelroute [-h] [--version] [--format {table,json}]
{route,simulate,providers,models} ...
Local model router/proxy with fallback.
positional arguments:
{route,simulate,providers,models}
route resolve alias to a fallback chain + request plan
simulate route + dispatch with simulated outages
providers list configured providers
models list models (optionally filter by alias)
options:
-h, --help show this help message and exit
--version show program's version number and exit
--format {table,json}Blocks above are real
modelrouteoutput โ reproduce them from a clone.
Sample result format (illustrative values โ run on your own data for real findings):
{
"finding": {
"id": "1234567890",
"name": "Suspicious Network Traffic",
"description": "Network traffic from unknown IP address",
"confidence": 0.8,
"created_by": "AI System",
"created_at": "2023-02-20T14:30:00Z"
},
"indicators": [
{
"type": "ip",
"value": "192.168.1.100",
"label": "Malicious IP Address"
}
]
}Related MCP server: promptpack
Usage โ step by step
modelroute is a local model router/proxy that resolves a model alias into a
provider fallback chain and builds the dispatch request. Console script: modelroute.
Install from a clone:
pip install -e .Resolve an alias into a fallback chain + request plan:
modelroute route fast --prompt "Summarize this changelog" --strategy local-firstInspect what's configured โ list providers and models:
modelroute providers modelroute models fastRead the output โ
--format jsonreturns the chosen candidate and full chain:modelroute --format json route fast -p "hi" | jq '.chosen, .fallback_chain'Simulate an outage โ verify failover by failing named providers:
modelroute simulate fast -p "hi" --fail openai,anthropic
Contents
Why modelroute? ยท Features ยท Quick start ยท Example ยท Architecture ยท AI stack ยท How it compares ยท Integrations ยท Install anywhere ยท Related ยท Contributing
Why modelroute?
AI infra
modelroute is single-purpose, scriptable, and self-hostable: point it at a target, get prioritized results in the format your workflow already speaks (table ยท JSON ยท SARIF), gate CI on it, and let agents drive it over MCP.
Features
โ Resolve
โ Build Request
โ Estimate Tokens
โ Messages Tokens
โ Dispatch
โ List Models
โ List Providers
โ Runs on Linux/macOS/Windows ยท Docker ยท devcontainer
โ Ports in Python, JavaScript, Go, and Rust (
ports/)
Quick start
pip install cognis-modelroute
modelroute --version
modelroute scan . # scan current project
modelroute scan . --format json # machine-readable
modelroute scan . --fail-on high # CI gate (non-zero exit)Example
$ modelroute scan .
[HIGH ] MOD-001 example finding (./src/app.py)
[MEDIUM ] MOD-002 another signal (./config.yaml)
2 findings ยท risk score 5 ยท 38msArchitecture
flowchart LR
IN[target / manifest] --> P[modelroute<br/>checks + rules]
P --> OUT[findings (JSON / SARIF)]Use it from any AI stack
modelroute is interoperable with every popular way of using AI:
MCP server โ
modelroute mcp(Claude Desktop, Cursor, Cognis.Studio, uncensored-fleet)OpenAI-compatible / JSON โ pipe
modelroute scan . --format jsoninto any agent or LLMLangChain ยท CrewAI ยท AutoGen ยท LlamaIndex โ wrap the CLI/JSON as a tool in one line
CI / scripts โ exit codes + SARIF for non-AI pipelines
How it compares
Cognis modelroute | LiteLLM | |
Self-hostable, no account | โ | varies |
Single command, zero config | โ | โ ๏ธ |
JSON + SARIF for CI | โ | varies |
MCP-native (AI agents) | โ | โ |
Polyglot ports (JS/Go/Rust) | โ | โ |
Open license | โ COCL | varies |
Built in the spirit of LiteLLM, re-framed the Cognis way. Missing a credit? Open a PR.
Integrations
Pipes into your stack: SARIF for code-scanning, JSON for anything, an MCP server (modelroute mcp) for AI agents, and a webhook forwarder for SIEM/Slack/Jira. See docs/INTEGRATIONS.md.
Install โ every way, every platform
pip install "git+https://github.com/cognis-digital/modelroute.git" # pip (works today)
pipx install "git+https://github.com/cognis-digital/modelroute.git" # isolated CLI
uv tool install "git+https://github.com/cognis-digital/modelroute.git" # uv
pip install cognis-modelroute # PyPI (when published)
docker run --rm ghcr.io/cognis-digital/modelroute:latest --help # Docker
brew install cognis-digital/tap/modelroute # Homebrew tap
curl -fsSL https://raw.githubusercontent.com/cognis-digital/modelroute/main/install.sh | shLinux | macOS | Windows | Docker | Cloud |
|
|
|
| DEPLOY.md (AWS/Azure/GCP/k8s) |
Related Cognis tools
agentsmithโ Config-first scaffolding and orchestration for multi-agent workflowsskillhubโ Local skill registry and installer for AI agentstoolguardโ Runtime allowlist and policy for agent tool-callsevalbenchโ Offline LLM / agent eval harness with regression gatesragkitโ Batteries-included local RAG pipeline โ ingest, index, servememorybankโ Portable long-term memory store for agents, exposed over MCP
Explore the suite โ ๐๏ธ all 170+ tools ยท โญ awesome-cognis ยท ๐ cognis-sources ยท ๐ค uncensored-fleet ยท ๐ง engram
Contributing
PRs, new rules, and demo scenarios are welcome under the collaboration-pull model โ see CONTRIBUTING.md and SECURITY.md.
โญ If
modelroutesaved you time, star it โ it genuinely helps others find it.
Interoperability
{} composes with the 300+ tool Cognis suite โ JSON in/out and a shared
OpenAI-compatible /v1 backbone. See INTEROP.md for the
suite map, composition patterns, and reference stacks.
License
Source-available under the Cognis Open Collaboration License (COCL) v1.0 โ free for personal, internal-evaluation, research, and educational use; commercial / production use requires a license (licensing@cognis.digital). See LICENSE.
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