Principal Data & Analytics Strategist

Mayo Clinic

Rochester (MN)

On-site

USD 180,000 - 250,000

Full time

14 days+

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Benefits offered by this job

Medical plan options
Dental & vision options
HSA and FSAs for eligible expenses
Competitive retirement package

Job summary

Mayo Clinic is seeking a Principal Data Analytics & AI Strategist to serve as a technical authority for data, analytics, and AI strategy across products and platforms. This role defines scalable solution patterns, governance guardrails, and delivery models while aligning with enterprise data strategy and investment intent.

The position involves working across domains to socialize reference architectures, support high‑impact initiatives, and accelerate progress through hands‑on exploration.

Qualifications

  • Bachelor’s degree in computer science, information systems, engineering, mathematics, statistics, data science, or related field is required.
  • Master’s degree or PhD in a related field is preferred.
  • Extensive (15-20+ years) experience in enterprise data, analytics, and/or AI strategy or related discipline.
  • Experience defining enterprise-level strategy and translating it into executable roadmaps and delivery guardrails across portfolios.
  • Proven ability to communicate complex technical concepts to executive leadership with clear materials.
  • Strong knowledge of data & analytics concepts (data products, platforms, pipelines, governance, observability).
  • Experience influencing senior stakeholders to drive alignment in ambiguous environments.
  • Experience in regulated environments (healthcare, research, finance) with privacy/governance considerations.
  • Demonstrated facilitation skills for executives and technical audiences.
  • Cloud platform certification (Google, Azure, etc).
  • Experience establishing enterprise data operating models and measuring adoption.
  • Experience developing enterprise AI strategy including responsible AI controls and model risk management.
  • Experience with modern cloud data platforms and lakehouse/warehouse architectures.

Responsibilities

  • Translate data, analytics, and AI strategy into scalable solution patterns and governance guardrails.
  • Lead enterprise-wide data and AI initiatives across portfolios and domains.
  • Shape reference architectures and decision frameworks to accelerate delivery.
  • Collaborate with data engineering, analytics, AI/ML, security, and governance teams.
  • Present to senior leaders, articulating risks, options, and sequencing for investments.
  • Drive adoption of data products and operating models across the organization.
  • Provide hands-on exploration and prototyping to validate early technical decisions.

Skills

Executive communication and messaging
Stakeholder management
Data strategy and governance
AI/ML strategy
Cloud platform proficiency
Regulatory/compliance understanding
Facilitation and workshops
Enterprise data architecture
Decision framing and roadmapping
Cross-functional leadership

Education

Bachelor’s degree in CS/IS/Engineering/Data Science
Master’s degree or PhD in related field

Tools

Vector stores
Knowledge graphs
MCP servers

Job description

Why Mayo Clinic

Mayo Clinic is top-ranked in more specialties than any other care provider according to U.S. News & World Report. As we work together to put the needs of the patient first, we are also dedicated to our employees, investing in competitive compensation and comprehensive benefit plans– to take care of you and your family, now and in the future. And with continuing education and advancement opportunities at every turn, you can build a long, successful career with Mayo Clinic.

Benefits Highlights
  • Medical:Multiple plan options.
  • Dental:Delta Dental or reimbursement account for flexible coverage.
  • Vision:Affordable plan with national network.
  • Pre-Tax Savings:HSA and FSAs for eligible expenses.
  • Retirement: Competitive retirement package to secure your future.

The Principal Data Analytics & AI Strategist is a principal‑level individual contributor who serves as a technical authority and enterprise‑level thought leader for data, analytics, and AI solution direction across products, platforms, and strategic problem areas. This role shapes how enterprise data, analytics and AI strategy is translated into scalable solution patterns, architectural guardrails, and delivery models that can be consistently executed across teams.

The role connects system-level technical decisions to broader enterprise data and analytics strategy, governance, and investment intent—ensuring initiatives are interoperable, governable, and positioned to deliver sustained, measurable value at scale. The Principal Data Analytics & AI Strategist operates across high ambiguity, making and documenting complex tradeoffs related to platform capabilities, data architecture, analytics and AI patterns, operating constraints, and sequencing of delivery.

Working across domains and portfolios, the Principal Data Analytics & AI Strategist influences the full solution lifecycle—from opportunity framing and options analysis through solution design guidance and delivery oversight. The role defines and socializes reference architectures, preferred patterns, and decision frameworks, supports high‑risk or high‑impact initiatives, and accelerates progress through hands‑on exploration and prototyping where early technical validation is critical.

The Principal Data Analytics & AI Strategist partners closely with senior leaders and practitioners across data engineering, analytics/BI, AI/ML, platform, security, and governance functions to align on technical direction, surface risks and dependencies early, and enable timely, enterprise‑wide decision‑making—exerting influence without direct authority to drive clarity, consistency, and execution momentum.

  • Bachelor’s degree in computer science, information systems, engineering, mathematics, statistics, data science, or related field from an accredited University or College is required.
  • Master’s degree or PhD in a related field (e.g., computer science, data science, business analytics, healthcare informatics, or MBA) is preferred.
  • Extensive (15-20+ years) experience in enterprise data, analytics, and/or AI strategy, architecture, consulting, product/program delivery, or related discipline.
  • Demonstrated experience defining enterprise‑level strategy and translating it into executable roadmaps, capability models, and delivery guardrails across multiple portfolios.
  • Proven ability to communicate complex technical implementation concepts to executive leadership, including architecture tradeoffs, investment options, risk, and sequencing; produces clear, decision‑ready materials.
  • Strong working knowledge of modern data and analytics concepts (data products, data platforms, pipelines, BI/visualization, governance, metadata, quality, privacy/security fundamentals, and observability).
  • Experience influencing across senior stakeholders and cross‑functional teams (engineering, analytics, AI/ML, security, privacy, architecture, governance) to drive alignment and decisions in ambiguous environments.
  • Experience operating in regulated environments (e.g., healthcare, research, financial services), with familiarity with privacy, compliance, governance, and responsible AI expectations.
  • Demonstrated facilitation skills for executive and technical audiences (workshops, strategic reviews, governance forums) and strong written communication skills.
  • Certification in one or more major cloud platforms (Google, Azure, etc)
  • Experience establishing or evolving enterprise data operating models (e.g., data product operating model, platform governance, domain engagement, stewardship models) and measuring adoption/maturity over time.
  • Experience developing and/or governing enterprise AI strategy, including responsible AI controls, model risk management, and GenAI/agentic patterns (grounding, evaluation, monitoring).
  • Experience with cloud data platforms and modern architecture patterns (lakehouse/warehouse, streaming/eventing, semantic layers/metrics, MDM/reference data), including cost/value tradeoffs.
  • Demonstrated experience building reusable playbooks, reference architectures, templates, and standards that scale delivery across multiple teams.

The ideal candidate will have prior experience in working through large scale AI transformations for organizations including creation of vector stores, Knowledge graphs, MCP servers and getting an organization data teams AI ready.

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