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Enterprise AI Toolkit MCP

Python MCP FastAPI Docker Tests License

An enterprise MCP server that exposes reusable AI, RAG, document intelligence, knowledge graph, SQL, evaluation, and AI architecture capabilities as standardized tools for AI agents.


🌟 Vision & Overview

The Enterprise AI Toolkit MCP acts as an enterprise capability gateway between AI agents (Claude, Gemini, OpenAI, custom agents) and backend enterprise AI infrastructure. Instead of coupling an agent to monolithic custom code or fragile API calls, agents can discover and compose standardized tools for document processing, RAG research, knowledge graph queries, natural language SQL, model evaluation, and cloud architecture design.

                         β”Œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”
                         β”‚      AI Agent         β”‚
                         β”‚ Claude / Gemini /     β”‚
                         β”‚ OpenAI / Custom Agent β”‚
                         β””β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”¬β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”˜
                                     β”‚
                                     β”‚ MCP JSON-RPC
                                     β–Ό
                    β”Œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”
                    β”‚   Enterprise AI Toolkit MCP  β”‚
                    β”‚                              β”‚
                    β”‚  MCP Server + Tool Registry  β”‚
                    β””β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”¬β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”˜
                                   β”‚
          β”Œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”Όβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”
          β”‚                        β”‚                        β”‚
          β–Ό                        β–Ό                        β–Ό
 β”Œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”      β”Œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”      β”Œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”
 β”‚ Document Tools  β”‚      β”‚ Knowledge Tools β”‚      β”‚ Data Tools      β”‚
 β”œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€      β”œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€      β”œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€
 β”‚ OCR & Extract   β”‚      β”‚ Vector Search   β”‚      β”‚ SQL Generation  β”‚
 β”‚ Summarization   β”‚      β”‚ Grounded RAG    β”‚      β”‚ SQL Validation  β”‚
 β”‚ Contract Audit  β”‚      β”‚ Knowledge Graph β”‚      β”‚ Execute Query   β”‚
 β””β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”˜      β””β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”˜      β””β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”˜

          β”Œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”Όβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”
          β”‚                        β”‚                        β”‚
          β–Ό                        β–Ό                        β–Ό
 β”Œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”      β”Œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”      β”Œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”
 β”‚ LLM Tools       β”‚      β”‚ Evaluation      β”‚      β”‚ Architecture   β”‚
 β”œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€      β”œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€      β”œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€
 β”‚ LLM Evaluation  β”‚      β”‚ Faithfulness    β”‚      β”‚ AI Architectureβ”‚
 β”‚ Cost Estimator  β”‚      β”‚ Groundedness    β”‚      β”‚ TCO Cost Calc   β”‚
 β”‚ Prompt Guard    β”‚      β”‚ Latency & Cost  β”‚      β”‚ Tech Stack      β”‚
 β””β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”˜      β””β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”˜      β””β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”˜

Related MCP server: production-grade-mcp-agentic-system

πŸš€ Key Features

  • 16 Standardized MCP Tools: Complete coverage for Document Intelligence, RAG, Knowledge Graph, SQL Intelligence, LLM Evaluation, Cost Estimation, and Cloud Architecture.

  • 100% Demo Mode / Zero API Key Requirement: Runs out of the box using intelligent offline MockLLMProvider, local vector index, in-memory Knowledge Graph, and SQLite database.

  • LLM Provider Agnostic: Easily toggle between Google Gemini (gemini-2.5-flash), OpenAI (gpt-4o-mini), and local mock provider.

  • Enterprise Security & Governance:

    • PromptGuard: Prompt injection threat detection and token efficiency analysis.

    • SQLGuard: Enforces read-only execution, blocks multi-statements, and catches dangerous keywords (DROP, DELETE, TRUNCATE).

    • InputValidator: Path traversal protection and upload size guards.

  • MCP Resources & Prompts: Exposes resource://enterprise-ai/catalog, configuration, model-registry, tool-metrics, and standardized prompts (enterprise_rag_analysis, enterprise_sql_analysis, enterprise_contract_review, enterprise_ai_architecture).


πŸ› οΈ MCP Tools Reference

Category

Tool Name

Description

Risk Level

Documents

extract_document

Extracts text, pages, metadata, headings, and chunks

LOW

Documents

summarize_document

Generates executive summaries, key takeaways, and action items

LOW

Documents

analyze_contract

Audits legal contracts for terms, obligations, risks, and risk score

MEDIUM

Knowledge

search_knowledge

Semantic vector search over enterprise document chunks

LOW

Knowledge

generate_rag_answer

Grounded RAG research with source citations

LOW

Knowledge

query_knowledge_graph

Queries and traverses entity-relationship Knowledge Graph

LOW

Data

generate_sql

Translates natural language into safe SQL queries

MEDIUM

Data

validate_sql

Validates SQL syntax against security policies and injection

LOW

Data

execute_sql

Safely executes read-only SQL queries against database

MEDIUM

Data

analyze_database_schema

Inspects database schema, foreign keys, and optimization tips

LOW

LLM

evaluate_llm

Evaluates LLM responses across correctness, relevance, faithfulness

LOW

LLM

estimate_llm_cost

Estimates daily, monthly, and annual LLM pricing

LOW

LLM

analyze_prompt

Analyzes prompt for security risks and injection threats

LOW

LLM

recommend_llm

Recommends optimal LLM based on budget, latency, and privacy

LOW

Architecture

design_ai_architecture

Generates enterprise AI architecture design with Mermaid diagram

LOW

Architecture

estimate_ai_solution_cost

Calculates TCO for enterprise GenAI solution

LOW


πŸ’» Quick Start & Installation

1. Install local package

pip install -e .

2. Run CLI commands

# List all 16 registered tools
enterprise-ai-mcp list-tools

# Check server health
enterprise-ai-mcp health

# Run E2E BFSI Demo Workflow
enterprise-ai-mcp demo

3. Run MCP Server in stdio mode

enterprise-ai-mcp server --transport stdio

πŸ§ͺ Testing

The repository includes a unit and integration test suite runnable without external API keys:

python -m pytest

🐳 Docker Deployment

# Docker Compose
docker-compose up -d

# Docker CLI
docker build -t enterprise-ai-mcp .
docker run -p 8000:8000 enterprise-ai-mcp

πŸ“ License

Distributed under the MIT License.

A
license - permissive license
-
quality - not tested
C
maintenance

Maintenance

–Maintainers
–Response time
–Release cycle
–Releases (12mo)
Commit activity

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