AVP, Lead AI Engineer

Posted 6 Days Ago
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Toronto, ON, CAN
In-Office
Senior level
Insurance
The Role
Lead design and delivery of production-grade AI/LLM platforms and assets to automate controls across Claims, Underwriting, Finance, and Technology. Build scalable ML pipelines, inference and serving, RAG and agentic solutions, ensure security/privacy/compliance, optimize cost and performance, and enable regional teams to operationalize AI capabilities.
Summary Generated by Built In

OVERVIEW
Drive AI engineering workstreams across the Audit+ program, ensuring compliance of UW and Claims processing, automation of controls, as well as driving cost reduction.

ROLE
This role will work closely with regional teams to identify and build production grade foundational capabilities, platform those capabilities to enable rapid operationalization and scale out of Audit+ AI capabilities. The primary focus is on end-to-end automation of controls across Claims, UW, Finance and Technology.

FOCUS AREAS & RESPONSIBILITIES
• Develop the next generation of AI driven Audit+ platforms and AI assets, including Agentic framework 
• Build scalable pipelines for data ingestion, feature engineering, model training, evaluation, and monitoring
• Develop and integrate generative AI applications, including LLM-based workflows, agents, and retrieval-augmented generation (RAG) solutions
• Ensure solutions meet security, privacy, compliance, and responsible AI standards
• Optimize model performance, reliability, latency, and cost across the AI lifecycle
• Platform capabilities for extending AI enablement to human-lead operations in areas like QA, Training | Operations for faster and efficient production and introduce efficiencies in distribution workflows 
• Enable sales analytics | marketing with a foundational layer of AI with Consumer LLM as needed
• Drive implementation and change management in collaboration with regional D&A leads, business and technology partners
• Work with the Consumer+ Platform Engineering team to develop reusable Foundational AI Assets | Applications to accelerate local deployments 
• Support Business Development by evangelizing our AI success stories to stakeholders and sponsors as needed
• Enable the regional and local teams to leverage Global Consumer+ platforms and be self-sufficient

Operating Network: 
• Work closely with regional Data & Analytics teams to identify opportunities and assist in implementation  
• Collaborate with Regional IT, GDO, Global Analytics, Ops for data | infra | integration related to implementation
• Collaborate with teams to enforce responsible AI, model risk management, and AI governance



Qualifications

Candidate Profile:

Technical Skills
• Strong hands-on coding ability in Python plus at least one additional language (TypeScript, Go, or Java); disciplined about clean code, design docs, and code review.
• Deep knowledge of modern LLM tooling and techniques: Hugging Face Transformers, prompt engineering, post-training/fine-tuning pipelines, retrieval-augmented generation (RAG), and agentic AI frameworks.
• Experience with inference optimization and high-throughput serving frameworks.
• Proven experience shipping and operating high-scale services on Docker/Kubernetes with CI/CD pipelines (GitHub Actions, Jenkins, or similar).
• Experience with event-stream/service-integration technologies (e.g., Kafka) and building resilient, observable production systems (SLOs for latency, error rate, availability).
• Experience building end-to-end ML pipelines: data ingestion, feature engineering, model training, evaluation, and monitoring.
• Experience integrating AI/LLM services into user-facing products (APIs, SDKs, real-time UX features).

Governance, Risk & Compliance
• Working knowledge of responsible AI practices, model risk management, and AI governance frameworks.
• Experience Ensuring AI solutions meet security, privacy, and regulatory compliance standards, particularly in audit, underwriting, or claims-adjacent contexts.

Leadership & Collaboration
• Ability to architect and own robust, scalable engineering solutions while remaining hands-on with code.
• Experience partnering cross-functionally with regional Data & Analytics teams, IT, GDO/Ops, front-end, and DevOps stakeholders to drive implementation and change management.
• Ability to represent technical architecture, trade-offs, and AI risk to both engineering leaders and non-technical executives with clarity and confidence.
Attributes
• Outstanding written and verbal communication across technical and executive audiences.
• Bias for action and comfort making high-impact decisions under uncertainty.
• Ability to drive KPI/OKR-based delivery in an iterative, sprint-based environment.

Chubb Canada does not use artificial intelligence (AI) tools to assess, screen, or select applicants.

 

At Chubb we are committed to providing equal employment opportunities to all employees and applicants. It is our policy to provide equal employment opportunities to employees and applicants based on job-related qualifications and ability to perform a job. If you require an accommodation during the hiring process or upon hire, please inform Human Resources. If a selected applicant requests accommodation during the recruitment process, Chubb will consult with the applicant in order to provide suitable accommodation that takes into account the applicant’s accessibility needs.

Skills Required

  • Hands-on coding in Python plus at least one additional language (TypeScript, Go, or Java).
  • Deep knowledge of LLM tooling and techniques: Hugging Face Transformers, prompt engineering, fine-tuning, RAG, and agentic AI frameworks.
  • Experience with inference optimization and high-throughput serving frameworks.
  • Proven experience shipping and operating high-scale services on Docker/Kubernetes with CI/CD pipelines (GitHub Actions, Jenkins, or similar).
  • Experience with event-stream/service-integration technologies (e.g., Kafka) and building resilient, observable production systems (SLOs for latency, error rate, availability).
  • Experience building end-to-end ML pipelines: data ingestion, feature engineering, model training, evaluation, and monitoring.
  • Experience integrating AI/LLM services into user-facing products (APIs, SDKs, real-time UX features).
  • Working knowledge of responsible AI practices, model risk management, and AI governance frameworks.
  • Experience ensuring AI solutions meet security, privacy, and regulatory compliance standards, particularly in audit, underwriting, or claims-adjacent contexts.
  • Ability to architect and own robust, scalable engineering solutions while remaining hands-on with code.
  • Experience partnering cross-functionally to drive implementation and change management.
  • Outstanding written and verbal communication across technical and executive audiences.
  • Bias for action and comfort making high-impact decisions under uncertainty.
  • Ability to drive KPI/OKR-based delivery in an iterative, sprint-based environment.
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The Company
HQ: Zürich
27,791 Employees

What We Do

Chubb is the world’s largest publicly traded property and casualty insurance company. With operations in 54 countries and territories, Chubb provides commercial and personal property and casualty insurance, personal accident and supplemental health insurance, reinsurance and life insurance to a diverse group of clients. As an underwriting company, we assess, assume and manage risk with insight and discipline. We service and pay our claims fairly and promptly. The company is also defined by its extensive product and service offerings, broad distribution capabilities, exceptional financial strength and local operations globally. Parent company Chubb Limited is listed on the New York Stock Exchange (NYSE: CB) and is a component of the S&P 500 index. Chubb maintains executive offices in Zurich, New York, London, Paris and other locations, and employs 31,000 people worldwide. Additional information can be found at: chubb.com.

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