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Senior AI Engineer with Microsoft Azure

Remote in Georgia, & 4 others
AI Solution Engineering
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We are looking for a Senior AI Engineer with Microsoft Azure expertise to take validated prototypes and make them survive production: evals, guardrails, security, cost and scale. You will build agentic systems on the Azure stack and code AI-first every day, with the commits to prove it. We value an 80% mindset and 20% skills approach — frameworks change quarterly, and we don't hire for one. What we can't teach is evaluation-driven engineering discipline and the honesty to say what a demo hides.

Responsibilities
  • Industrialize prototypes into production services on Azure — Azure AI Foundry / Azure OpenAI — from build-ready pack to a system real users depend on in weeks
  • Build agentic systems properly, choosing orchestration frameworks, RAG pipelines, vector DBs, knowledge graphs and MCP-based tool integration by need and engineer them for change
  • Build the eval harness first: golden sets, regression evals and guardrail tests wired into CI, with quality measured on every change
  • Engineer the guardrails, including input/output filtering, grounding and citation, PII protection, rate limits and human escalation paths
  • Deliver full stack services in Python and/or Java Spring Boot along with TypeScript/Angular front ends
  • Run production engineering end-to-end, covering CI/CD, observability with traces on every LLM call, cost and latency management and model-version churn absorbed by design
  • Build security and compliance in, respecting data classification boundaries in prompts, stores and logs, externalizing secrets and making every AI decision auditable
  • Iterate from real usage through hypercare, tuning and fixes based on evidence, and package patterns that worked for the next pod
Requirements
  • 3+ years of experience shipping LLM/agentic systems in production with real users, with a defined eval approach and scale
  • Proficiency in Python, Java Spring Boot and/or TypeScript/Angular
  • Expertise in Azure PaaS and Azure AI services
  • Skills in agentic frameworks, vector DBs, knowledge graphs and MCP
  • Competency in prompt and context engineering
  • Background in CI/CD and observability, having operated what you built
  • Familiarity with daily AI-assisted engineering, coding with AI agents and demonstrating the workflow live
  • English proficiency at B2 level or higher