This is not a slide-making or prompt-engineering role. We are looking for someone who has built multi-agent AI systems that run in production - not demos, not pilots that died after a sprint. You will anchor AI delivery programs end-to-end, work directly with global clients, and stay sharp on a field that changes every few weeks.
You will report into and replicate the function of a senior AI delivery leader - which means you need both the depth to architect solutions and the presence to walk a CXO through what you built and why it works.
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Deployed 2 3 agent-based systems in production - stateful, multi-step, real users
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Used LangGraph for multi-agent orchestration with memory, tool routing, and state management
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Built projects where AI (Claude Code, Codex, Cursor) wrote significant portions of the code
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Implemented RAG pipelines end-to-end - chunking, embedding, retrieval, re-ranking, evaluation
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Integrated agents with real enterprise APIs - not just OpenAI playground or sample data
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Debugged a production agent failure - and fixed it without blaming the model
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Can articulate when NOT to use agents - that is how we know you have built things
Delivery & Architecture
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Own end-to-end delivery of AI-native programs - from architecture through production deployment
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Design and build multi-agent orchestration systems using LangChain, LangGraph, CrewAI, or equivalent
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Integrate agent systems with enterprise surfaces: APIs, ERPs, CRMs, data platforms - not toy datasets
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Define agent topology: tool routing, memory strategy, state machines, fallback handling
Agentic Coding & Development
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Run agentic coding workflows using Claude Code, Cursor, OpenAI Codex, or equivalent CLI tools
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Lead projects where AI writes significant portions of the codebase - and you guide, review, and ship it
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Work with CLAUDE.md, shared context frameworks, and multi-session agent setups for team use
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Debug non-deterministic agent outputs systematically - not by gut feel
Client & Stakeholder Engagement
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Translate business problems into agent architectures for global CXO-level stakeholders
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Run discovery workshops, solution reviews, and delivery cadences with client teams
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Prepare and present technical proposals, POC plans, and roadmaps - own the story end-to-end
Team & Practice
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Mentor junior AI engineers; raise AI engineering quality across the delivery team
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Stay current: evaluate new models, frameworks, and tooling before the hype catches up
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Contribute to internal knowledge bases, reusable frameworks, and accelerators
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