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Goremutualinsurance

Director, Data Science

Cambridge, Ontario, Canada · Toronto, Ontario, Canada

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hirly's read of this role

Seniority
Director
Country
CA
Work mode
On-site / unstated
First seen by hirly
21 Sept 2026

Derived automatically from the posting. Upload your resume above to see how the role scores against it.

the posting

At Gore Mutual, we’ve always set ourselves apart as a modern mutual that does good. Now, we’re proudly building on that legacy to transform our company—and our industry—for the better.

Effective January 1, 2026, Gore has joined Beneva—the country’s largest mutual insurance company—as part of its Property & Casualty operations in Ontario and Western Canada. During 2026, Gore will combine its operations with Unica Insurance, Beneva’s Ontario-based subsidiary specializing in niche commercial and personal insurance, creating a stronger, more diversified mutual insurer with greater scale and long-term stability.

Every decision and investment remains anchored in long-term benefits to customers, members, and communities. Come join us.

This leadership position requires a unique combination of techn ical expe rtise , strategic thinking, and innovatio n to lev erage data and advanced analytics solutions that drive business growth, enhance operational efficiency, and ensure regulatory compliance. This role will lead a team of data scientists focused on delivering measured value through AI/ML use cases that span across all aspects of Gore. You will lead and mentor a team of high performing data scientists and shape our growth strategy through empirical studies and experimentation. This role is resourceful, analytically rigorous, with extensive experience leading data science teams and a passion for solving product problems.

This role is a mix of consulting know-how (problem solving, thought leadership, communication), analytical proficiency in statistics, data science and machine learning, agentic workflows, and, when required, hands-on proficiency in SQL/Python programming, visualization methods and technologies, and data engineering / infrastructure.

This role is responsible for leveraging data science to assess risks, improve underwriting, detect fraud, and optimize pricing models while unlocking valuable insights, optimize processes, and inform decision-making. By implementing advanced analytics and ensuring data integrity, this role enables the organization to make informed decisions, streamline operations, and ultimately provide better coverage and services to policyholders while managing risks effectively.

What will you do :

Model Development & Deployment

Managing a data science project from end-to-end, including collaborating with partners and stakeholders to understand the business problem, obtaining data, defining an experimental design, setting up a model building pipeline, overseeing a team of data scientists to build necessary models, and working with a team of developers to implement models and managing a monitoring process

D eveloping and maintaining predictive models using advanced ML/ AI techniques. B uilding Supervised and unsupervised learning models LLM workflows and agents .

overseeing the development of analytical products and machine learning models, AI models, LLM workflows and agents, building and enabling analytics infrastructure including production model deployment, as well as Non Prod experimentation, deployment and testing

Define metrics to measure the impact of AI initiatives on business outcomes.

Model Maintenance, Governance & Validation

Design detailed validation plans and perform quantitative, conceptual and technical assessment of models; Discuss and effectively communicate validation observations and findings with teams .

Accountable for the integration of AI solutions, application deployment in production including, app health, resiliency, performance, security, enterprise data management standards, ethical and privacy standards

Continuously monitor and improve the performance of AI models, ensuring their accuracy, reliability, scalability, and ethical application . Includes optimization of our end-to-end machine learning pipelines, scaling, automating, and monitoring our predictive models and pipeline s.

Strategic direction on compliance for the design, development, and implementation of AI models into operational workflows, including helping draft and review the procedures that support a compliance system. R esponsibilities include guiding AI teams with project planning, system architecture, risk management, verification & validation, and continuous monitoring.

Leadership & Cross-Functional Collaboration

Lead a team of data scientists to develop, plan, and execute multiple analytical projects creating and delivering high quality AI and analytical solutions across a broad spectrum of projects and business lines.

Being a change champion and help the business conduct business problem opportunities and assessment identifying revenue generation and cost saving opportunities, developing proposals and make recommendations for model usage to the downstream partners.

Advocates and advances modern, Agile solution delivery practices, great design , engineering and organizational practices , c hallenging the team to utilize creative thinking to modify or select the most suitable procedure/approach to solve a business problem balancing complexity and value.

Driving change within team and across broader Data & Analytics the importance of learning our business and the respective to help aid in our building the best solutions – be a business expert.

Guide project teams in synthesizing analytical findings for consumption by internal analytical clients and business executives .Excellent communicator who is able to convey complex information in an understandable, compelling, and persuasive manner to non-technical clients and executives and junior data scientists

Strategy

Creates the advanced analytics strategy, ensuring technology solutions comply with enterprise AI/ML standards, model governance and model risk standards, and AI Ethics, Fairness and Bias related control practices

Conceptualize, design and execute an ambitious data science, ML and AI (e.g., LLM and agentic) roadmap

Own the business outcomes, KPIs and deliverables of that roadmap working across stakeholders

Identify and define new strategic ML opportunities and work with cross functional teams to understand business requirements and guide the team to provide data-driven solutions, improving how we do data collection, storage, experimentation and analysis.

Research & Innovation

Stay current with the latest advancements in Agentic/ AI/ML solutions and evaluate their applicability to Gore

Develop strategic relationships and partnerships with the startup, academia, and industry ecosystem to garner mindshare and learnings.

Foster a culture of innovation by encouraging research, experimentation and exploration of novel AI techniques

What skills will you need:

Minimum Master’s degree , Ph.D. Highly preferred in a technology/analytical field such as Computer Science, Physics, Economics, Data Science, Operations Research, Machine Learning, Engineering, or other relevant scientific fields

Over 10 years of expereince with a minimum 8 years of relevant professional experience, 4+ years of leading a team in developing and implementing AI/ML solutions (predictive, prescriptive, ML etc.)with an excellent understanding of the underlying Statistical, Machine Learning theory, and Predictive Modeling Lifecycle

Extensive experience in building, deploying, and managing production-ready generative models and machine learning models.

Foundational and applied knowledge of statistical analyses, data science, and machine learning including, but not limited to descriptive, inferential, or causal statistics, predictive and forecast modeling, optimization modeling, NLP, LLM and agentic workflows and A/B testing methods

Deep expertise in developing and maintaining predictive models using advanced ML/ AI techniques. Proficiency in building Supervised learning models [ (classification and regression) – tree-based (Random Forest, Stochastic Gradient Boosting and eXtreme Gradient Boosting, Decis

Original posting on Goremutualinsurance's site ↗

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