Oliver Wyman - Senior Lead Engineer

Marsh McLennanBoston, NY
Hybrid

About The Position

Oliver Wyman Quotient partners with clients to deliver breakthrough outcomes for their toughest AI challenges by blending the power of AI technology with deep industry expertise. We accelerate and embed AI transformation by building strong capabilities and culture. Our people co-create and grow customer-focused solutions that win, modernize technology, and harness value from data and analytics. We build resilience so our clients are ready for tomorrow’s risks and optimize operations for the future. We work collaboratively with clients’ leaders, employees, stakeholders, and customers to jointly define, design, and achieve lasting results. As a Senior Lead AI Engineer, you will manage technical projects and help teams design and build AI/ML systems and pipelines that are extensible and production quality. You will be an expert in selected domains, able to contrast methods and select appropriate approaches based on the data or modeling problem. You will work alongside Oliver Wyman partners, engage directly with clients to understand their business challenges, and craft solutions with other OW Quotient specialists and consultants.

Requirements

  • Technical background in computer science, data science, machine learning, artificial intelligence, statistics or other quantitative and computational science
  • Compelling track record of designing and deploying large-scale technical solutions, which deliver tangible, ongoing value
  • Direct experience having built and deployed robust, complex production systems that implement modern artificial intelligence at scale
  • Comfort in environments where large projects are time-boxed, and therefore consequential design decisions may need to be made and acted upon rapidly
  • Demonstrated fluency in modern programming languages for artificial intelligence / agents, covering the end-to-end AI development lifecycle
  • Knowledge of one or more agentic platforms, including but not limited to: Azure Foundry, AWS Bedrock, Gemini Enterprise Agent Platform
  • Deep familiarity with the architecture, performance characteristics, and limitations of compound AI systems, including retrieval-augmented generation, tool use, agentic memory, and multi-agent orchestration
  • Experience designing and operating evaluation frameworks and observability tooling to measure AI system quality, detect failure modes, and maintain performance in production
  • Proficiency in LLM system design, including prompt engineering, context and token management, structured output, fine-tuning tradeoffs, and cost/latency optimization
  • Solid theoretical grounding in the mathematical core of the major ideas in AI/ML
  • Applied understanding of a class of modelling or analytical techniques
  • Fluency in the mathematical principles and generalizations of data science – e.g., Statistics, Linear Algebra and Vector Calculus
  • Practical awareness of AI risk, bias, and governance, including how to identify and mitigate failure modes in high-stakes or regulated environments

Nice To Haves

  • A history of compelling side projects or contributions to the Open-Source community is valued but not required
  • Experience presenting at high-impact AI/ML engineering conferences and solid connections to the AI/ML engineering community (e.g., via meetups, open-source contributions, continuing relationships with academics, etc.) is highly valued
  • Interest/background in Financial Services, Healthcare and Life Sciences, Consumer, Retail, Energy, or Transportation industries

Responsibilities

  • Exploring data and crafting AI solutions to answer core business problems
  • Working with Partners and Principals to shape proposals that leverage our AI and engineering capabilities
  • Building and deploying LLM-based agent systems in production
  • Keeping up with your domain’s state of the art & developing familiarity with emerging modelling and data engineering methodologies
  • Advocating application of best practices in modelling, code hygiene and data engineering
  • Leading the development of proprietary AI/ML solutions, algorithms, or analytical tools and infrastructure on projects and asset development

Benefits

  • health and welfare benefits
  • tuition assistance
  • 401K savings and other retirement programs
  • employee assistance programs
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