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AI Engineering Lead/Architect

Job Description - AI Engineering Lead/Architect

Description
What You Will Do Delivery & Programme Leadership


  • Own end-to-end delivery of a $10M+ engineering portfolio across clients — on time, on budget, and to quality bar.



  • Lead platform build, modernisation, and custom application programmes natively on cloud, spanning .NET Full-Stack, Java Distributed Systems, Python stack etc.



  • Set and enforce engineering standards: architecture guardrails, code quality, DevSecOps, and release cadence across multi-team engagements.



  • Manage programme risk proactively — escalate early, resolve decisively, and keep clients informed throughout.


AI-Driven Engineering Acceleration


  • Embed AI tooling across the SDLC — from AI-assisted requirements and design through to automated testing, code generation, and incident response.



  • Architect and operationalise agentic systems and workflows that reduce manual toil, accelerate delivery cycles, and improve output quality. 



  • Quantify the impact of AI adoption: establish baselines, track velocity and quality metrics, and present measurable efficiency gains to clients and leadership.



  • Stay ahead of the AI tooling curve; evaluate and pilot emerging platforms (LLM orchestration, RAG pipelines, AI code assistants). 


Portfolio & Revenue Growth


  • Carry full P&L accountability for the portfolio — margin, revenue, forecasting, and commercial hygiene.



  • Partner with practice, consulting, and client partner leaders to identify expansion opportunities within existing accounts and shape new pursuit strategies.



  • Translate delivery track record into growth narrative — contribute to proposals, solution designs, and client presentations that differentiate on execution credibility.


Client & Stakeholder Engagement


  • Serve as the senior delivery point-of-contact for clients — build trust-based relationships at CTO/CIO/VP level.



  • Facilitate governance forums (steering committees, QBRs, escalation calls) with clarity and confidence.



  • Align internal stakeholders — practice heads, resource managers, people leaders — to programme needs without bureaucratic drag.


People & Capability Development


  • Lead, mentor, and grow a high-performing engineering organisation; foster a culture of ownership and continuous improvement.



  • Champion individual upskilling — create structured learning pathways around AI, cloud, and modern engineering practices.



  • Spot and develop next-generation delivery leaders from within the team.




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