local-model-suitability-mcp
Provides integration with LangChain through the MultiServerMCPClient to access the local model suitability tool.
Allows integration with LangGraph (via LangChain MCP adapters) to use the local model suitability tool.
Enables integration with the OpenAI Agents SDK using HostedMCPTool to access the local model suitability tool.
Click 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., "@local-model-suitability-mcpCan I run this summarization locally?"
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.
Local Model Suitability MCP
Cloud inference is expensive. Everything that can run locally should.
This MCP server tells your agent — before every cloud API call — whether the task can be handled by a local model instead. Route to Ollama, LM Studio, or llama.cpp when you can. Only pay for cloud when you must.
The Tool
check_local_viability
Call this BEFORE every cloud inference call. If verdict is LOCAL, skip the cloud call entirely and route to your local model. Only use cloud when this tool returns CLOUD.
Inputs:
Field | Required | Description |
| ✅ | The exact task you are about to send to a cloud model |
| Optional |
|
| Optional |
|
CONFIDENTIAL forces LOCAL regardless of task complexity — data never leaves the machine.
Response:
{
"verdict": "LOCAL",
"confidence": "HIGH",
"reason": "Simple text summarisation — no reasoning depth required. Any 7B+ local model handles this well.",
"estimated_cost_saving": "$0.002-0.008 saved per call at claude-sonnet pricing",
"recommended_local_models": ["llama3.2:8b", "mistral-7b", "phi3:medium"],
"cloud_justified_reason": null,
"analysis_type": "AI-powered cost routing — NOT a simple lookup"
}Related MCP server: local-llm-delegation-mcp
Data Sources
AI reasoning: Anthropic Claude (claude-sonnet) — cost routing analysis
No external data sources — pure AI reasoning
Pricing
Plan | Calls | Price |
Free | 20/month | $0 |
Starter | 500-call bundle | $20 |
Pro | 2,000-call bundle | $70 |
Setup
{
"mcpServers": {
"local-model-suitability": {
"command": "npx",
"args": ["-y", "local-model-suitability-mcp"],
"env": {
"ANTHROPIC_API_KEY": "your-key",
"API_KEY": "your-lms-api-key-for-paid-tier"
}
}
}
}Free tier requires no API key — tracked by IP.
Harness Integration
Claude Code / Claude Desktop (.mcp.json)
{
"mcpServers": {
"local-model-suitability": {
"type": "http",
"url": "https://local-model-suitability-mcp-production.up.railway.app"
}
}
}LangChain (Python)
from langchain_mcp_adapters.client import MultiServerMCPClient
client = MultiServerMCPClient({
"local-model-suitability": {
"url": "https://local-model-suitability-mcp-production.up.railway.app",
"transport": "http"
}
})
tools = await client.get_tools()OpenAI Agents SDK (Python)
from agents import Agent, HostedMCPTool
agent = Agent(
name="Assistant",
tools=[HostedMCPTool(tool_config={
"type": "mcp",
"server_label": "local-model-suitability",
"server_url": "https://local-model-suitability-mcp-production.up.railway.app",
"require_approval": "never"
})]
)LangGraph
Same as LangChain above — langchain-mcp-adapters works with LangGraph natively.
Legal
Results are for cost-optimisation guidance only and do not constitute technical advice. Full terms: kordagencies.com/terms.html
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