Eman Fatima's Work | ContraWork by Eman Fatima
Eman Fatima

Eman Fatima

AI EngineerbuildingFullStack,LLM &AIapplicationdevelopment.

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Built a PhysioCare AI Voice Receptionist designed to handle physiotherapy-related conversations through a natural voice interface. The assistant can interact with users, understand their requests, and support common reception workflows for a physiotherapy service. The project focused on combining voice AI, LLM-based conversation, and backend/API workflows into a practical healthcare application. Key areas included: AI voice assistant Conversational AI LLM integration Physiotherapy-focused workflows Tool/function calling API integration Backend workflow development Voice conversation flow and testing.
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Built a PhysioCare MCP Server that connects an AI assistant with physiotherapy-focused tools through the Model Context Protocol (MCP). The project demonstrates tool calling for physiotherapy use cases, allowing an AI system to interact with structured healthcare-related functions instead of relying only on static responses. Key work included: MCP server development Tool/function calling Physiotherapy-focused AI tools Structured tool inputs and outputs AI-to-tool communication API-based workflow Testing and debugging of MCP tools This project was built as a practical AI Engineering project to explore how MCP can connect LLM-powered applications with real-world domain-specific tools.
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Cover image for Physio MCP Server is a
Physio MCP Server is a healthcare-focused Model Context Protocol (MCP) server built with Python and FastMCP. This project demonstrates MCP client-server communication with physiotherapy-related tools, including patient progress tracking and pain improvement analysis. The server provides tools to process patient pain scores, attendance data, and generate simple rehabilitation progress insights through an MCP client. Tech Stack: Python, MCP, FastMCP, MCP Client-Server Architecture
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AI Healthcare Assistant — AI Agent Built an AI-powered healthcare assistant designed to help users with general health and physiotherapy-related guidance through an interactive AI agent interface. Key Features AI-powered conversational healthcare assistance User-friendly chat interface Health and physiotherapy-focused responses Interactive AI agent workflow Practical healthcare use-case implementation Focus on accessible and personalized user support Tech Focus AI Engineering, LLMs, AI Agents, Python, API integration, and healthcare-focused AI workflows. This project demonstrates my ability to design and build practical AI solutions for real-world healthcare use cases.
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