Azure Platform Engineer
Listed on 2026-06-29
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IT/Tech
AI Engineer (Applied/Software), Machine Learning/ ML Engineer, Azure
Job Title: Microsoft Certified Azure AI Engineer with AI Foundry Exp (Onsite)
Location: Onsite in Newark, NJ
Duration: 6 Months
Job DescriptionAzure AI Python LLMs AI Agents RAG Role Overview An Azure AI Foundry AI Engineer designs, builds, and deploys intelligent generative AI, agentic workflows, and RAG (Retrieval-Augmented Generation) applications. This role requires coding with Python, orchestrating AI models, and adhering to responsible AI standards for enterprise scalability.
Key Responsibilities- AI & Agent Development:
Design autonomous or semi-autonomous AI agents and RAG pipelines using Azure AI Foundry (formerly Azure AI Studio). - Testing & Evaluation:
Implement performance and evaluation tooling (such as RAGAS or Tru Lens) to assess grounding accuracy, reduce hallucinations, and ensure model explainability. - Infrastructure Management:
Develop scalable AI infrastructure and maintain reusable AI components in accordance with engineering best practices (version control, observability, CI/CD).
Technical
Skills:
Proficiency in Python, prompt engineering, and utilizing frameworks like Lang Chain, Semantic Kernel, or crewAI. Python (primary language) ML frameworks:
Tensor Flow, PyTorch, Scikit-learn. Data pipelines and preprocessing. Model deployment and MLOps (e.g., MLflow, Docker, CI/CD). Machine learning, deep learning, and statistics. Data modeling and feature engineering. APIs and microservices. Cloud platforms (Azure ML, Sage Maker, Vertex AI). LLMs (GPT, Llama, etc.). RAG (Retrieval-Augmented Generation). Prompt engineering and vector databases. Ability to build AI-powered applications (chatbots, agents, copilots).
Skills:
Communication. MySQL.
Cloud
Experience:
Deep understanding of the Microsoft Azure ecosystem, including Azure OpenAI Service, Azure Machine Learning, and Microsoft Fabric.
AI Governance: Strong focus on Responsible AI and Model Context Protocol (MCP) to ensure security, privacy, and fairness in model outputs.
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