Posted:1 day ago| Platform: Foundit logo

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Job Type

Full Time

Job Description

Key Responsibilities:

AI Agent Development & Autonomous Systems

  • Develop AI/ML-powered autonomous agents using Azure AI Foundry, Azure Agent AI Service, LangGraph, AutoGen, and Semantic Kernel
  • Design and implement multi-agent AI workflows with reasoning, goal-driven planning, and adaptive memory
  • Utilize Semantic Kernel for long-term memory, function calling, and RAG-based workflows
  • Orchestrate and fine-tune AI models in production environments using Azure AI Foundry

LLM & AI Integration in Full-Stack Applications

  • Deploy GPT-4, Phi-3, and Hugging Face models on Azure OpenAI for enterprise applications
  • Integrate LLM-based services into .NET and Node.js APIs
  • Develop AI-powered UIs using React.js, embedding natural language interfaces and AI copilots
  • Implement vector search and retrieval with Azure Cognitive Search, Pinecone, and FAISS

Full-Stack AI Application Development

  • Build backend AI APIs using .NET Core or Node.js integrated with Azure AI services
  • Develop interactive AI-driven frontends using React.js, TypeScript, and Microsoft Fluent UI
  • Implement AI-assisted chatbots, copilots, and workflow automation in enterprise applications
  • Ensure scalability, performance, and security of AI-powered web applications

Enterprise AI & Microsoft Ecosystem Integration

  • Build LLM-driven enterprise copilots for Microsoft 365, Teams, and Power Platform
  • Develop AI-powered assistants and chatbots integrating with Microsoft Graph API & Azure AI Studio
  • Automate workflows using AI agents in Power Automate and Azure Logic Apps
  • Enhance enterprise search and knowledge management using Azure Cognitive Search and vector databases

AI Performance Optimization & Responsible AI

  • Optimize LLM token usage, reduce latency, and improve cost efficiency
  • Implement prompt engineering, retrieval caching, and fine-tuned model deployment
  • Ensure compliance with Azure AI Content Safety, Responsible AI principles, and enterprise AI governance
  • Build monitoring and explainability tools to track LLM outputs and mitigate risks

Collaboration & AI Strategy

  • Collaborate with Data Scientists, Software Engineers, and Cloud Architects for AI-driven solutions
  • Advocate for multi-agent AI engineering and AI-assisted application development best practices
  • Stay updated with Azure AI innovations and enterprise AI trends
  • Contribute to open-source AI projects and Microsoft AI research initiatives

Preferred Qualifications:

  • Microsoft AI Certifications (Azure AI Engineer Associate, AI-102, DP-100)
  • Experience with multi-modal AI models, LLMOps, and Reinforcement Learning from Human Feedback (RLHF)
  • Background in cognitive architectures, explainable AI (XAI), and enterprise AI governance
  • Contributions to open-source AI frameworks (LangGraph, AutoGen, Semantic Kernel, Transformers)

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