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Ema is building the agentic AI operating system for enterprises. We help some of the world’s largest organizations transform deeply manual, brittle business processes into reliable, measurable, production-grade automated systems using AI agents, integrations, and human-in-the-loop UX. At Ema, success means real workflows running in production, used daily by business teams, with measurable outcomes. We’re founded by leaders from Google, Coinbase, and Okta, backed by top-tier investors, and scaling rapidly. As we grow, we’re building a team of engineers who don’t just ship code — they own outcomes. Customer Value Engineering is Ema’s forward-deployed, production-focused engineering group. CVE engineers sit at the intersection of Applied AI systems, real customer business processes and enterprise-grade reliability, security, and integrations. In this role you will work directly with customers and internal product/engineering teams to design, build, deploy, and improve agentic systems that actually move business metrics. If you want to move beyond demos and prototypes and learn how real AI systems behave in production this role is ideal for you.
Job Responsibility:
Design agentic workflows that map customer business processes to multi-agent systems with clear success criteria
Build and deploy AI applications using Ema’s platform: agents, tools, integrations, human-in-the-loop workflows
Implement integrations with enterprise systems (CRM, ticketing, data stores, internal APIs)
Debug production issues across the stack — model behavior, orchestration logic, permissions, data quality, UX
Run evaluations using golden datasets- test data generation, offline tests, regression checks, and real user feedback
Collaborate closely with customers (Ops, IT, business users) to deliver measurable value post launch
Partner with Product & Core Engineering to feed learnings back into the platform and improve reusability
Requirements:
3+ years of production software engineering experience
At least one real production deployment of a GenAI/LLM-powered system (not just POCs)
Strong programming skills in Python and/or TypeScript
Practical experience with prompt and instruction design beyond basics
Tool/function calling and structured outputs
Practical experience with Retrieval and grounding (RAG, embeddings, chunking strategies)
Practical experience with Human-in-the-loop workflows and safe rollout patterns