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Principal Technical Product Manager (AI & Data Science)
Role Overview
We are seeking a Principal Technical Product Manager to lead the strategy, development, and scaling of enterprise AI and data science products. This role sits at the intersection of product strategy, advanced analytics, and platform engineering, driving the end-to-end lifecycle from concept through production.
As a senior individual contributor, you will operate as a product leader and technical translator, aligning stakeholders, shaping roadmaps, and ensuring delivery of high-impact AI solutions that deliver measurable business value.
Key Responsibilities
Product Strategy & Vision
- Define and own the product vision, strategy, and roadmap for AI/ML-driven products and data platforms
- Translate business objectives into scalable, reusable AI product capabilities
- Identify opportunities to leverage advanced analytics, machine learning, and generative AI to drive business impact
End-to-End Product Ownership
- Lead product lifecycle from opportunity identification → POC → MVP → production scaling
- Ensure products meet enterprise standards for architecture, governance, and compliance
- Define success metrics (KPIs, adoption, ROI) and manage performance post-launch
Technical Product Leadership
- Partner closely with engineering, data science, and platform teams to:
- Define technical requirements and architecture trade-offs
- Prioritize backlog and align delivery to business value
- Ensure solutions are scalable, secure, and production-ready
- Stay current on AI/ML trends and evaluate emerging technologies
Stakeholder & Cross-Functional Alignment
- Act as primary interface across business, technology, data science, and governance teams
- Lead workshops and facilitate alignment on priorities, scope, and trade-offs
- Communicate clearly with both executive and technical audiences
Execution & Delivery Excellence
- Drive agile product development, including backlog prioritization and sprint planning
- Manage dependencies across teams and ensure on-time, high-quality delivery
- Proactively identify risks and implement mitigation strategies
Governance, Risk, and Responsible AI
- Ensure solutions adhere to enterprise AI governance, security, and compliance standards
- Embed best practices for model validation, monitoring, explainability, and fairness
- Partner with risk, legal, and security teams on production readiness
Qualifications
Experience
- 10+ years of product management experience, including:
- 10+ years in technical product management
- Proven experience delivering data science, AI/ML, or analytics products
- Track record of shipping products from concept to production at scale
- Advanced understanding of adoption strategies and metrics
Technical Skills
- Strong understanding of:
- Machine learning lifecycle (data prep, modeling, deployment, monitoring)
- Data platforms (cloud, data pipelines, APIs, analytics tools)
- AI/GenAI concepts (LLMs, prompt engineering, evaluation frameworks)
- Ability to engage deeply in technical conversations with engineers and data scientists
Leadership & Execution
- Demonstrated ability to lead cross-functional, matrixed teams
- Strong prioritization and decision-making skills in ambiguous environments
- Excellent communication and stakeholder management skills
Education
- Master’s degree in Computer Science, Engineering, Data Science, or related field (or equivalent experience)
Preferred Qualifications
- Experience building enterprise AI platforms or AI-enabled products, specifically in Gemini Enterprise Agent Platform
- Familiarity with cloud environments (GCP, AWS, Azure) and modern data stacks
- Experience with regulated industries (insurance, finance, healthcare)
Key Skills for Regulated Industries:
- Regulatory & Compliance Acumen
- Deep understanding of regulatory frameworks (e.g., SOX, GDPR, HIPAA, Model Risk Management)
- Ability to translate regulatory requirements into product features, controls, and workflows
- Responsible AI & Model Governance
- Experience implementing model validation, explainability, fairness, and bias detection
- Familiarity with AI governance frameworks, auditability, and documentation standards
- Ability to operationalize model risk management (MRM) practices across the product lifecycle
- Data Privacy & Security
- Strong understanding of data protection, PII handling, and data classification
- Experience partnering with security teams on access controls, encryption, and data lineage
- Knowledge of secure AI/ML architectures (e.g., VPC controls, air-gapped environments)
- Audit & Traceability
- Ability to ensure solutions are fully auditable, with clear lineage from data → model → output
- Experience supporting internal/external audits with appropriate controls and documentation
- Enterprise Risk Management
- Ability to identify and manage operational, reputational, and compliance risks
- Experience working with Legal, Risk, and Compliance functions to approve and scale AI solutions
- Policy-to-Product Translation
- Proven ability to take ambiguous regulatory or governance requirements and translate them into:
- Product requirements
- Acceptance criteria
- Monitoring and reporting capabilities
- Proven ability to take ambiguous regulatory or governance requirements and translate them into:
- Change Management & Adoption in Regulated Environments
- Experience driving adoption where risk sensitivity is high and approvals are multi-layered
- Ability to balance innovation speed with control rigor
Compensation
The listed annualized base pay range is primarily based on analysis of similar positions in the external market. Actual base pay could vary and may be above or below the listed range based on factors including but not limited to performance, proficiency and demonstration of competencies required for the role. The base pay is just one component of The Hartford’s total compensation package for employees. Other rewards may include short-term or annual bonuses, long-term incentives, and on-the-spot recognition. The annualized base pay range for this role is:
$153,200 - $229,800Equal Opportunity Employer/Sex/Race/Color/Veterans/Disability/Sexual Orientation/Gender Identity or Expression/Religion/Age
About Us | Our Culture | What It’s Like to Work Here | Perks & Benefits
Skills Required
- 10+ years product management experience, including 10+ years in technical product management
- Proven experience delivering data science, AI/ML, or analytics products
- Track record of shipping products from concept to production at scale
- Advanced understanding of adoption strategies and metrics
- Strong understanding of machine learning lifecycle (data preparation, modeling, deployment, monitoring)
- Strong understanding of data platforms (cloud, data pipelines, APIs, analytics tools)
- Strong understanding of AI/GenAI concepts (LLMs, prompt engineering, evaluation frameworks)
- Ability to engage deeply in technical conversations with engineers and data scientists
- Demonstrated ability to lead cross-functional, matrixed teams
- Strong prioritization and decision-making skills in ambiguous environments
- Excellent communication and stakeholder management skills
- Master's degree in Computer Science, Engineering, Data Science, or related field (or equivalent experience)
- Ensure solutions adhere to enterprise AI governance, security, and compliance standards
- Experience implementing model validation, monitoring, explainability, fairness, and bias detection
- Familiarity with model risk management (MRM) and operationalizing MRM practices
- Deep understanding of regulatory frameworks (e.g., SOX, GDPR, HIPAA, Model Risk Management) and translating requirements into product features and controls
- Strong understanding of data protection, PII handling, data classification, access controls, encryption, and data lineage
- Ability to ensure auditability and traceability from data to model outputs and support internal/external audits
- Ability to identify and manage operational, reputational, and compliance risks and work with Legal, Risk, and Compliance functions
- Proven ability to translate ambiguous regulatory or governance requirements into product requirements, acceptance criteria, and monitoring/reporting capabilities
- Experience driving change management and adoption in high-risk, multi-layered approval environments
- Experience building enterprise AI platforms or AI-enabled products, specifically in Gemini Enterprise Agent Platform
- Familiarity with cloud environments (GCP, AWS, Azure) and modern data stacks
- Experience with regulated industries (insurance, finance, healthcare)
The Hartford Financial Services Group, Inc. Compensation & Benefits Highlights
The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about The Hartford Financial Services Group, Inc. and has not been reviewed or approved by The Hartford Financial Services Group, Inc..
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Retirement Support — The retirement savings plan pairs matching with an additional company contribution and guidance, strengthening long‑term financial security. Consistent 401(k) generosity elevates perceived total compensation across roles.
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Leave & Time Off Breadth — Paid time off, holidays, and paid leaves are described as generous and accessible, supporting work‑life balance. The ability to take meaningful time away adds value beyond base pay.
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Healthcare Strength — Health, dental, and vision options are comprehensive, with supplemental coverages that help manage out‑of‑pocket costs. Mental health resources, EAP access, and wellness programs further reinforce overall benefits value.
The Hartford Financial Services Group, Inc. Insights
What We Do
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