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Are you a customer-obsessed, AI-curious problem-solver who thrives in an inclusive, collaborative global team? The Azure Engineering Operations (EngOps) team's mission is to transform Microsoft Cloud customers into fans. Through our deep engineering engagements with customers and teams across Microsoft, we analyze and amplify customer needs and drive the vision to improve Cloud quality, security, and reliability. Our culture of growth mindset and empowerment are central to who we are and how we work. Our ACES engineering team is at the heart of delivering scalable, intelligent, AI-powered solutions that transform the Azure customer support experience. We are seeking an Applied AI II Engineer to join the team and help build the next generation of agentic AI services that resolve customer issues faster, reduce support volume, and power AI-first support at Azure scale. You will take product specifications and turn them into production-ready, scalable AI services — working with LLM orchestration, multi-agent coordination, and RAG-based systems. You will ship production services that directly impact Azure customers. Every day, our customers stake their business and reputation on our cloud. You can help Azure EngOps provide our customers with the world-class cloud services they need to succeed. Microsoft's mission is to empower every person and every organization on the planet to achieve more. As employees we come together with a growth mindset, innovate to empower others, and collaborate to realize our shared goals. Each day we build on our values of respect, integrity, and accountability to create a culture of inclusion where everyone can thrive at work and beyond.
Job Responsibility:
Translate product specifications into AI service architectures — decompose business intent into agent workflows, data source integrations, and scalable service designs
Build agentic AI workflows using Azure AI Foundry Agent Service and Microsoft Agent Framework, including multi-agent coordination, tool integrations, and agent lifecycle management
Develop and iterate on LLM-based solutions including prompt engineering, model selection, cost/token optimization, and RAG pipeline design
Build evaluation systems including rubrics, golden datasets, and judge agents to validate agent correctness and safety before production deployment
Write production-quality C# and Python with test-driven development, ensuring services meet reliability, performance, and security standards
Deploy services using CI/CD pipelines, feature flags, and staged rollouts with full production observability (tracing, logging, metrics)
Implement secure service patterns including RBAC, Managed Identities, and secrets management
Integrate agents with Azure data sources and cloud-native services to ground agent responses in real-time signals
Apply Responsible AI practices across all agent development, ensuring outputs are safe, fair, and compliant
Execute reliably within sprint and co-development commitments across ACES and partner engineering teams
Own the end-to-end lifecycle of AI service components, including design, development, testing, deployment, monitoring, and incident response
Requirements:
Bachelor's Degree AND 2+ years experience in low-code application development, engineering product/technical program management, data analysis, or product development OR equivalent experience
Bachelor's Degree AND 5+ years experience in low-code application development, engineering product/technical program management, data analysis, or product development OR equivalent experience
1+ year(s) of experience using low-code/no-code platforms (e.g., Dataverse, Power Applications)
1+ year(s) of experience managing and configuring artificial intelligence solutions (e.g., chatbots)
1+ year(s) of experience with programming/coding
Familiarity with Azure services (Azure OpenAI, Azure AI Foundry, Azure Functions, Cosmos DB, or similar cloud-native technologies)
Experience with CI/CD pipelines, automated testing, and production observability
Understanding of data structures, algorithms, and system design fundamentals
Nice to have:
Familiarity with Azure services (Azure OpenAI, Azure AI Foundry, Azure Functions, Cosmos DB, or similar cloud-native technologies)
Experience with CI/CD pipelines, automated testing, and production observability
Understanding of data structures, algorithms, and system design fundamentals