Forward Deployment Architect

Xebia

Abu Dhabi

On-site

AED 350,000 - 600,000

Full time

2 days ago
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Job summary

Xebia is building in-house AI expertise to deliver AI in aviation. As Forward Deployed AI Engineer, Technical Lead you set the technical direction for a squad embedded in the business and own end-to-end design, build, deploy and run of agentic AI systems for aviation outcomes.

You collaborate with a Business Product Owner and an AI Value Architect on a shared platform, ensuring security, governance, and scalable delivery across enterprise systems.

Qualifications

  • 8+ years of production software experience with 4+ years in GenAI/LLMs.
  • Hands-on agentic AI knowledge and shipping agentic systems at scale.
  • Experience connecting agents to tools, APIs and data via MCP.
  • Experience with cloud deployment, containers, monitoring and security governance.

Responsibilities

  • Define technical direction for agentic AI work within a squad.
  • Design, build, deploy and operate enterprise-grade AI agents end-to-end.
  • Lead multi-agent and agent-to-agent systems with vendor platforms.
  • Mentor engineers and raise quality, security, and cost standards.
  • Collaborate with Product Owner and AI Value Architect to deliver outcomes.

Skills

GenAI
LLMs
Applied ML
Agentic AI
Cloud deployments
APIs & integrations
Security & Governance
Enterprise software

Education

Master's degree in CS/AI or equivalent
Cloud-AI / GenAI certifications

Tools

LangGraph
Semantic Kernel
CrewAI
AutoGen
OpenAI Agents SDK
Microsoft Foundry
Amazon Bedrock AgentCore
Google Vertex/Gemini
Azure AI Search
pgvector
Pinecone
Weaviate
OpenSearch

Job description

Xebia is building in-house AI expertise to deliver AI in aviation. We build; we do not buy off the shelf. As a Forward Deployed AI Engineer, Technical Lead you set the technical direction for a squad embedded in the business: you sit with stakeholders to understand the problem and the why, then design, build, deploy and run the agentic AI systems that solve it, end to end. This is a hands-on, build-first role with single-threaded ownership of a real aviation outcome, working alongside a Business Product Owner and an AI Value Architect, on a shared platform (paved road, MCP fabric, standards) that lets your squad self-serve against Customer’s systems.

Accountabilities & Responsibilities

Understand before you build. Start every problem with the business need and the why, working directly with stakeholders, then take the solution from discovery to production.

  • Design, build, deploy and continuously improve enterprise-grade agentic AI applications for real aviation scenarios, using agentic coding as your default way of working.
  • Build agents that reason across steps, call tools and APIs, manage context, handle exceptions and support human-in-the-loop, reliably and at enterprise scale.
  • Design and implement RAG pipelines over enterprise knowledge: ingestion, chunking, embeddings, vector search, retrieval tuning, grounding and source traceability.
  • Build MCP-based integrations and connect agents to backend systems via REST/OpenAPI, webhooks and event-driven patterns with secure authentication, and expose your own work as clean, reusable, self-serviceable interfaces.
  • Apply structured LLM patterns end to end: tool calling, schema-validated outputs, retries, fallbacks and guardrails.
  • Own quality from day one: testing, evaluation, observability, logging, versioning and feedback loops for reliability, accuracy, latency, security and cost.
  • Apply security, privacy, access control, auditability, responsible‑AI and governance across every deployment.
  • Take single-threaded ownership of a domain outcome (one owner, one result) and help establish reusable patterns that grow Customer’s internal AI capability rather than renting it.
  • Coordinate with your Business Product Owner, AI Value Architect and other squads; speak up when AI is not the right tool.
  • Set the technical direction and standards for the squad’s agentic AI work, and make the key architecture and build‑vs‑buy calls.
  • Design multi-agent and agent-to-agent systems and evaluation frameworks that keep them reliable, and lead delivery with external AI platforms and vendors while building Customer internal capability.
  • Grow the engineers around you: mentor, review, and raise the bar on quality, security and cost across the squad.
Education & Experience

We look for a technical lead who sets the engineering direction for agentic AI while still building, and combines that with a business-first mindset:

  • Curiosity above all: you dig into problems, question assumptions and want to understand how the airline actually works.
  • A business‑first, human‑centric mindset: aviation is made for humans, by humans, and AI supports people, it does not replace them. Fluent English, comfortable in a culturally diverse, international team.
  • 8+ years building production‑grade software, including 4+ years with GenAI, LLMs and applied ML and at least 1 year of hands‑on agentic AI as an early adopter, with a track record of setting technical direction and shipping agentic systems at scale.
  • Hands‑on experience or strong working knowledge of MCP (Model Context Protocol) for connecting agents to tools, systems, APIs and data.
  • Practical experience with at least one agent framework or enterprise AI platform (e.g. LangGraph, Semantic Kernel, CrewAI, AutoGen, OpenAI Agents SDK, Microsoft Foundry, Amazon Bedrock AgentCore, Google Vertex/Gemini) and with a vector database or search platform (e.g. Azure AI Search, pgvector, Pinecone, Weaviate, OpenSearch).
  • Experience integrating enterprise systems (APIs, managed identities, webhooks, queues, middleware) and deploying on cloud with containers, monitoring and observability; sound judgement on the trade‑offs of latency, quality, cost and reliability, and on security, privacy, responsible AI and governance.
  • Strong assets: aviation or airline domain knowledge; a background in classical machine learning and data science; and classical full‑stack development (interfaces, frontends, APIs, backend engineering).
  • Preferred for this level:
  • Experience building AI agents for complex enterprise or operations‑heavy workflows (logistics, supply chain, aviation, cargo, customer operations or contact centre).
  • Experience with voice AI, email automation, CRM integrations, workflow automation or multilingual agents.
  • Experience designing golden test sets, simulation‑based testing, regression testing and agent evaluation frameworks.
  • Experience designing multi‑agent systems and agent‑to‑agent communication patterns, agent registries or tool‑orchestration standards.
  • Experience leading delivery with external AI platforms, startups or vendors while building internal engineering capability.
  • Master’s degree in computer science, Software Engineering, Data Science, AI/ML or a related technical field, or equivalent practical experience; relevant cloud‑AI, GenAI, agentic‑AI or MLOps certifications are an advantage.
  • Growth path: the natural next step is AI Value Architect, owning a cluster’s value journey while still building alongside the team.
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