We are building an AI-powered operating model for Ocean Operations and a next-generation optimisation capability for global Network Design. This role is not limited to agent orchestration or execution workflows. It is a senior technical leadership role for how AI strengthens optimisation methods, modelling, and decision quality across both planning and execution.
The remit is broader than a standalone AI feature set. It covers how AI, optimisation, and engineering come together to deliver better network decisions at scale, while also shaping agentic decision systems in Control Tower style execution environments.
Role purpose:
The Principal AI Engineer will set the technical direction for AI-augmented optimisation and intelligent operational decisioning. This person will lead through specialists in optimisation, modelling, heuristics, analytics, and experimentation. They will define where AI can materially improve search, structural recommendations, and solver-backed workflows, while also guiding the design of multi-agent systems for reasoning, orchestration, exception handling, and human-in-the-loop execution.
What you will own?
•Technical direction for AI-augmented optimisation and agentic decision systems across Network Design and operational execution
•How planning problems are framed and where AI can improve search, candidate generation, structural recommendations, and decision quality
•The interface between AI systems, heuristics, solver layers, optimisation services, and enterprise workflows
•Patterns for when AI should recommend, act autonomously, or escalate to humans
•The quality bar for experimentation, evaluation, and translation of new methods into measurable value for planners and decision-makers
•Reusable intelligence patterns that can scale across both Control Tower and Network Design use cases
Key responsibilities:
•Lead the optimisation intelligence agenda across network design, routing, vessel deployment, cargo flow, and operational decisioning
•Set direction for how teams define problem structures, formulate optimisation approaches, design heuristics, and identify where AI can improve search, modelling quality, and decision outcomes
•Guide specialists building optimisation models, analytical components, and AI capabilities, ensuring their work fits into a coherent AI plus OR architecture
•Drive structured experimentation to compare alternative methods, validate model behaviour, and improve performance, robustness, and scalability
•Define how AI systems should interact with solver layers, heuristics, and optimisation services rather than treating AI as a separate layer
•Lead the use of agentic AI where it adds value to reasoning, orchestration, exception handling, and human-in-the-loop decision support
•Shape the innovation roadmap by identifying promising new methods and accelerating them into pilots and scaled capabilities
•Raise standards across modelling practice, technical quality, experimentation discipline, and architectural judgment
•Communicate assumptions, trade-offs, and limitations clearly to senior stakeholders and decision-makers
What we are looking for?
We are looking for a senior technical leader with deep credibility across both AI and optimisation, and with the ability to lead through highly skilled specialists rather than doing all modelling work personally.
The strongest profile will combine experience in agentic AI systems and human-in-the-loop workflows with strong grounding in optimisation methods such as heuristics, search, mathematical programming, decomposition, or hybrid AI plus OR approaches. This person should also be comfortable directing teams working on modelling, experimentation, performance improvement, and implementation into production environments.
Required qualifications:
•Advanced degree in engineering, mathematics, computer science, operations research, or another quantitative field
•Significant experience leading applied AI, decision intelligence, optimisation, or analytical platform work in complex operational domains
•Strong understanding of optimisation and modelling principles and how algorithms support real planning problems
•Experience improving planning, routing, scheduling, or network optimisation through heuristics, analytics, or AI-based enhancements
•Strong Python skills and comfort working closely with software and data engineering teams
•Proven ability to lead experimentation, validate model performance, and convert technical ideas into business-relevant capabilities
•Strong communication skills with the ability to explain technical trade-offs to non-technical stakeholders
Preferred qualifications:
•Experience in logistics, supply chain, shipping, transportation, or another optimisation-heavy industry
•Exposure to large-scale network design, routing, fleet planning, cargo flow optimisation, or similar decision systems
•Experience using AI or ML to improve optimisation performance, such as learning-augmented algorithms, surrogate models, search guidance, or reinforcement learning
•Experience working across research, prototyping, and productionisation of optimisation methods
Leadership expectations:
This role is expected to lead through others. The Principal AI Engineer should create the technical direction, decision framework, and quality standards for a broader team of optimisation, analytics, and AI specialists. The role should not be framed as a lone architect writing models end to end. It should be framed as the senior leader who sets the optimisation intelligence agenda and ensures that specialist work compounds into a coherent capability.
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