Sr. Data Governance Analyst
Listed on 2026-07-03
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IT/Tech
Data Analyst, Business Systems/ Tech Analyst, Data Engineering, Data Security
Linked In is the world's largest professional network, built to create economic opportunity for every member of the global workforce. Our products help people make powerful connections, discover exciting opportunities, build necessary skills, and gain valuable insights every day. We're also committed to providing transformational opportunities for our own employees by investing in their growth. We aspire to create a culture that's built on trust, care, inclusion, and fun – where everyone can succeed.
Join us to transform the way the world works.
Job DescriptionThis role will be based in Bellevue, Chicago, Carpinteria, Detroit, New York City, Omaha, Sunnyvale, San Francisco, or Washington,
D.C
At Linked In , our approach to flexible work is centered on trust andoptimizedfor culture, connection, clarity, and the evolving needs of our business.
The work location of this role is hybrid, meaning it will be performed both from home and from a Linked In office on select days, asdeterminedby the business needs of the team.
This role will be part of the People Analytics organization within the Global Talent Organization (GTO) ple Analytics enables better, faster, and more strategic workforce decisions through trusted data, scalable insights, and modern analytics platforms.
We are seeking a highly collaborative and technically strong Data Governance professional to help build and operationalize the next generation of People Data Governance capabilities. This role will partner closely with People Analytics, Engineering, HR Technology, Data Science, Security, Privacy, and business stakeholders to establish trusted, scalable, and AI-ready workforce data foundations.
This position goes beyond traditional governance execution and will help shape how enterprise people data is structured, governed, standardized, and operationalized to support modern analytics, automation, and emerging AI use cases. The ideal candidate will combine strong governance expertise with hands‑on technical acumen and an understanding of how upstream business processes influence downstream analytics and AI outcomes.
The successful candidate will help drive governance maturity across data ownership, stewardship, metadata management, observability, semantic modeling, and data quality management while enabling scalable and compliant consumption of workforce data across the enterprise.
Responsibilities:
- Partner with functional teams, HR Technology, Engineering, Legal, Privacy, and Security teams to define and operationalize enterprise data governance policies, standards, and stewardship models
- Help establish scalable governance frameworks that improve trust, consistency, accessibility, compliance, and usability of workforce data across reporting, analytics, automation, and AI-driven use cases
- Drive governance initiatives focused on foundational AI readiness, including trusted data structures, standardized definitions, metadata enrichment, lineage visibility, and scalable semantic models
- Evaluate and improve upstream business processes and data capture mechanisms to ensure enterprise systems produce high-quality, reliable, and AI-consumable data
- Partner with cross-functional stakeholders to define enterprise metric standards, business glossary definitions, ownership models, and stewardship accountability frameworks
- Support enterprise metadata management, cataloging, taxonomy management, lineage documentation, and semantic layer governance initiatives
- Define and operationalize data quality management practices including observability, issue triage, remediation workflows, SLA management, and certification processes
- Collaborate with data scientists, analytics teams, and engineering organizations to translate business requirements into scalable governance-enabled data solutions
- Support the development of governance knowledge management capabilities including training, governance documentation, playbooks, operating procedures, and adoption frameworks
- Work with structured and unstructured datasets across enterprise HR systems, analytics platforms, and cloud-based ecosystems
- Develop and analyze SQL-based queries and semantic models to validate data integrity,…
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