Group Technical Product Manager

Posted Yesterday
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Hiring Remotely in United States
Remote
Senior level
Insurance
The Role
Lead strategy and delivery for enterprise data, analytics, and AI/ML products. Manage a small TPM team, own portfolio roadmaps, prioritize platform investments, ensure model governance and compliance, and drive measurable business outcomes through cross-functional leadership and operational excellence.
Summary Generated by Built In

Say hello to Hagerty 

Hagerty is a company built by drivers for drivers. We put our members at the center of everything we do and are dedicated to making it easier and more enjoyable for enthusiasts to drive and celebrate the machines they love. We’re proud to be the world’s largest insurer of collectible and enthusiast vehicles and are home to the Hagerty Drivers Club, the world’s largest car club. Our Marketplace business presents live and digital sales across the U.S. and Europe, we host a number of driving events and concours, and our award-winning automotive journalists produce the most popular car magazine globally, alongside internationally awarded videos. We’re committed to Never Stop Driving. Ready to get in the driver’s seat? Join us!

As the Group Technical Product Manager for Enterprise Data, Analytics, and AI/ML, you will lead a portfolio spanning Enterprise Data, Analytics, and AI/ML — owning strategy and delivery across the full data value chain.

You will lead a small team of Technical Product Managers accountable for enterprise data platforms, ML models, generative AI applications, data pipelines, and business intelligence. This is a player-coach role: you will own cross-cutting technical strategy and escalation decisions, while also serving as a Technical Product Manager for one or more value streams.  You’ll be responsible for staying close enough to delivery to resolve the hard calls when your team needs you.

You will sit at the intersection of product strategy, data platform leadership, and people management — partnering with Engineering, Data Science, Design, and senior business stakeholders to ensure Hagerty's enterprise data and AI capabilities evolve faster than the market demands.

What you’ll do

Portfolio Strategy & Vision

  • Own the strategy and roadmap across Enterprise Data, Analytics, and AI/ML — enterprise data platforms, data pipelines, ML models, generative AI, and BI — ensuring alignment with company objectives.
  • Classify and sequence investment across feature work, adoption, platform scaling, and new-capability expansion to maximize portfolio ROI.
  • Identify and prioritize cross-product dependencies, platform investment priorities, and build-vs-buy decisions across all three domains.
  • Partner with senior stakeholders to shape long-term platform vision, balancing innovation with foundational reliability and data quality.
  • Translate enterprise data strategy into actionable product priorities for your TPMs.

Team Leadership & Development

  • Lead, coach, and develop a small team of TPMs covering Enterprise Data, Analytics, and AI/ML — fostering high performance and a strong ownership culture.
  • Deliberately delegate high-visibility, high-complexity initiatives as stretch assignments; build systems, frameworks, and review cadences that enable TPMs to operate independently.
  • Provide ongoing performance feedback, career development support, and clear expectations for product excellence.
  • Model player-coach behavior: engaged enough in delivery to remove blockers, strategic enough to keep the team focused on what matters.
  • Calibrate workload and capacity across your TPMs, ensuring each has a clear and manageable scope.

Execution Oversight & Delivery

  • Ensure consistent, high-quality execution across enterprise data platform delivery, ML model productionization, AI feature rollout, and BI development.
  • Guide teams in prioritization and tradeoff decisions across new capabilities, technical debt, scalability, and compliance obligations.
  • Stay hands-on where it counts — joining critical ceremonies, unblocking decisions, and owning the hard prioritization calls that require Group-level authority.
  • Hold TPM plans to Hagerty's product plan review standard: measured outcomes tied to enterprise levers, an economically prioritized flow with a named constraint, and a probabilistic delivery forecast.

Technical & Platform Leadership

  • Produce and maintain the portfolio-level roadmap architecture — mission, product/system, and technology layers — aggregating Enterprise Data, Analytics, and AI/ML domain roadmaps into one coherent view with figures of merit and technology-readiness levels per initiative.
  • Apply evolution mapping across the enterprise data and AI stack to justify build, buy, and outsource decisions, and assign each initiative to a horizon with an explicit investment split so near-term delivery does not starve platform work.
  • Stay current on AI/ML advances and the evolving regulatory landscape for AI in insurance.
  • Ensure enterprise data products meet data governance, model risk management, and compliance requirements.

Cross-Functional & Organizational Leadership

  • Act as the senior product voice for Enterprise Data, Analytics, and AI/ML across Engineering, Data Science, Operations, and business leadership.
  • Identify what is blocking portfolio outcomes — including platform capacity, governance, or data engineering priorities outside your direct line — and influence leadership to resolve it.
  • Communicate portfolio strategy, delivery progress, risks, and tradeoffs clearly at all organizational levels — from sprint review to executive briefing.

Operational Excellence

  • Establish and evolve product management processes, backlog standards, and delivery practices across Enterprise Data, Analytics, and AI/ML.
  • Drive consistency in discovery, definition, and delivery execution across all three domains.
  • Implement mechanisms to track portfolio health, manage risk, and continuously improve team effectiveness.

Performance & Outcomes

  • Define and monitor KPIs across enterprise data products and AI capabilities, ensuring alignment with business outcomes.
  • Champion measurable impact: enterprise data platform reliability, model adoption, BI utilization, and time-to-insight.

Customer, Domain & Compliance

  • Ensure your team maintains deep understanding of internal and external customer needs, enterprise data workflows, and business outcomes.
  • Oversee alignment with regulatory and compliance requirements, including model risk management, SOX, data privacy, and AI governance standards.
  • Stay informed on industry trends in insurance analytics and AI-driven underwriting.

This might describe you

  • 8+ years of product management experience, with significant experience in enterprise data, analytics, ML, or AI-focused roles.
  • 3–5+ years of people management experience, including coaching and developing TPMs or similar roles.
  • Proven track record leading enterprise data and AI product portfolios — from raw data ingestion through ML models, generative AI features, and BI consumption.
  • Hands-on familiarity with the full data product lifecycle: enterprise data platforms, pipelines, model development, feature engineering, deployment, monitoring, and iteration. 
  • Strong understanding of LLM application patterns and the product challenges of building reliable, safe AI-driven experiences.
  • Working fluency in outcome-driven prioritization (Jobs to Be Done, Kano), economic sequencing (cost of delay, WSJF), capability roadmapping (layered roadmaps, Wardley mapping), and probabilistic delivery forecasting — sufficient to coach TPMs against Hagerty's product plan review standard.
  • Demonstrated ability to operate at both strategic and execution levels.
  • Strong technical acumen with the ability to engage meaningfully with data engineers, data scientists, ML engineers, and software engineers.
  • Excellent communication and stakeholder management skills, with the ability to influence at senior and executive levels.
  • Insurance or financial services industry experience is a plus.

Nice to have

  • Experience with enterprise data platforms or cloud data warehouses (e.g., Snowflake, Databricks) and ML orchestration tools.
  • Experience with agentic AI patterns, frameworks, or production agentic experiences.
  • Familiarity with model risk management frameworks or AI governance practices in regulated industries.
  • Exposure to Azure AI services, Azure ML, or comparable cloud-native AI/ML platforms.
  • Familiarity with Azure DevOps or similar agile delivery platforms.
  • Experience in compliance-driven product development (e.g., SOX, state insurance regulations).
  • Experience leading platform modernization or enterprise data infrastructure transformation initiatives.

You’ll thrive if you

  • Enjoy leading people and complex enterprise data and AI product ecosystems.
  • Think in systems and data flows, not just individual features.
  • Can balance long-term AI platform strategy with near-term delivery pressure.
  • Are energized by ambiguity — the enterprise data and AI space moves fast, and you help your team navigate it with clarity.
  • Hold yourself and your team accountable for measurable outcomes, not just activity.
  • Are passionate about developing others and building a team that doesn't need you for every answer.

Other things to note 

  • This position is open to U.S. remote work. However, team members who reside within 20 miles of the Traverse City headquarters will follow a hybrid schedule, working from the office three days per week. 
  • May require travel for quarterly events.  
  • Familiarity with public company requirements, including Sarbanes Oxley and key regulations, if applicable. For SOX compliant roles, responsible for designing, executing, and documenting internal controls where they have been identified as owners to prevent errors in financial reporting, processes, and business operations. Including attestation to the completeness, accuracy, and compliance of all financial reporting data, where applicable. 

If you reside in the following jurisdictions: Illinois, Colorado, California, District of Columbia, Hawaii, Maryland, Minnesota, Nevada, New York, or Jersey City, New Jersey, Cincinnati or Toledo, Ohio, Rhode Island, Washington, British Columbia, Canada please email [email protected] for compensation, comprehensive benefits and the perks that set us apart.  

At Hagerty, we share the road. We are an inclusive automotive community where all are welcomed, valued and belong regardless of race, gender, age, or car preference.  We are united by our shared passion for driving, our commitment to preserve car culture for future generations and our desire to make a positive impact in the world. 

 

#LI-Remote 

EEO/AA 

US Benefits Overview

Canada Benefits Overview

UK Benefits Overview

If you like wild growth and working with happy, enthusiastic over-achievers, you'll enjoy your career with us!

Skills Required

  • 8+ years of product management experience
  • 3-5+ years of people management experience coaching TPMs or similar roles
  • Proven track record leading enterprise data and AI product portfolios across data ingestion, ML models, generative AI, and BI
  • Hands-on familiarity with the full data product lifecycle: platforms, pipelines, feature engineering, model deployment, monitoring, and iteration
  • Strong understanding of LLM application patterns and building reliable, safe AI-driven experiences
  • Working fluency in outcome-driven prioritization and economic sequencing (Jobs to Be Done, Kano, cost of delay, WSJF)
  • Capability roadmapping and probabilistic delivery forecasting experience to coach TPMs
  • Strong technical acumen to engage with data engineers, data scientists, ML engineers, and software engineers
  • Excellent communication and stakeholder management skills with executive influence
  • Insurance or financial services industry experience
  • Familiarity with public company requirements and SOX controls (where applicable)

Hagerty Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Hagerty and has not been reviewed or approved by Hagerty.

  • Parental & Family Support Parental leave offerings include 12 weeks paid maternity leave, 4 weeks paid spousal/partner leave, adoption assistance, and a phased return to work. These elements signal strong support for family needs.
  • Healthcare Strength Medical, dental, and vision coverage are presented as comprehensive and paired with standard paid leave programs. This breadth forms a strong core health benefits foundation.
  • Retirement Support A 401(k) program with company matching and an Employee Stock Purchase Program are part of the package. These programs enhance long-term financial security and ownership opportunities.

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The Company
HQ: Traverse City, MI
1,514 Employees
Year Founded: 1983

What We Do

Hagerty was built by people who love cars. We began as a niche insurance agency offering coverage for collector cars. We’re now a global automotive enthusiast brand and the world’s largest membership organization for car lovers. It's all driven by our love for cars. Our purpose is saving driving. We exist to fuel car culture and ultimately save driving for future generations. Our mission is building a global business to fund our purpose, create a space where team members thrive; and drive positive impact throughout the world. Driving is who we are. Hagerty offers integrated membership products and programs with unique experiences that bring together automotive enthusiasts across the globe. We connect people who love cars through our Hagerty Drivers Club (620,000+ members), entertainment and events such as the Greenwich Concours d’Elegance, The Amelia, The Detroit Concours, Motorlux and the California Mille, as well as valuation capabilities, Hagerty Marketplace, Hagerty Media, and Garage + Social. Hagerty is always looking for talented new team members to help us drive forward. If our purpose, mission and beliefs resonate with you, let’s talk about getting you behind the wheel

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