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Staples India

Data Governance Lead

Posted 11 Days Ago
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In-Office
Chennai, Tamil Nadu, IND
Senior level
In-Office
Chennai, Tamil Nadu, IND
Senior level
Lead the enterprise data governance strategy, including metadata management, business glossaries, lineage, semantic layers, data products, quality standards, and trust frameworks. Partner with engineering, analytics, AI/ML, architecture, business, and product teams to make data discoverable, governed, and AI-ready. Establish stewardship, ownership, governance councils, certification processes, impact analysis, and controls for AI-generated insights and autonomous agents.
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Position Summary

We are seeking a Data Governance Lead to establish and scale the enterprise data governance framework that powers analytics, AI, and autonomous agents. This role will lead the design and governance of the organization's data catalog, business glossary, data lineage, semantic layer, and trusted data products using platforms such as Atlan, Alation, Microsoft Purview, and related technologies.

The ideal candidate understands that modern governance extends beyond compliance and documentation. They will build the metadata, business context, semantic models, and trust frameworks that enable humans and AI agents to consistently discover, understand, and use enterprise data at scale.

This role will partner closely with Data Engineering, Analytics, AI/ML, Enterprise Architecture, Business Teams, and Product Leaders to create an enterprise knowledge foundation that supports analytics, generative AI, agentic workflows, and data-driven decision making.


Key Responsibilities

Enterprise Data Governance Strategy

  • Define and execute the enterprise data governance roadmap.
  • Establish governance processes, operating models, stewardship responsibilities, and accountability frameworks.
  • Develop standards for data quality, metadata management, lineage, classification, and access governance.
  • Drive adoption of governance practices across business and technology teams.

Metadata & Knowledge Management

  • Lead implementation and optimization of Atlan, Alation, Purview, or similar governance platforms.
  • Build and maintain enterprise business glossaries, taxonomies, and knowledge frameworks.
  • Establish metadata standards that improve discoverability and trust in enterprise data assets.
  • Create governance processes for capturing business context and institutional knowledge.

Semantic Layer & Data Products

  • Define enterprise semantic layer strategy across analytics and AI platforms.
  • Partner with domain teams to create governed business metrics and standardized definitions.
  • Establish lifecycle management for data products and certified data assets.
  • Enable consistent business logic across reporting, analytics, AI solutions, and self-service platforms.

AI & Agent Readiness

  • Establish governance frameworks for AI-ready data assets.
  • Create structures that enable AI systems and autonomous agents to understand business context, metrics, definitions, and relationships.
  • Define standards for contextual metadata, business rules, semantic relationships, and knowledge representation.
  • Partner with AI and Data Science teams to ensure trusted, governed data is available for AI applications.
  • Develop governance controls for AI-generated insights and agent-based decision support systems.

Data Quality & Trust

  • Establish enterprise-wide data quality standards, monitoring, and remediation processes.
  • Define critical data elements and associated quality metrics.
  • Develop trust scores, certification processes, and governance workflows for enterprise data assets.
  • Drive continuous improvement of data reliability and usability.

Lineage & Impact Analysis

  • Build end-to-end visibility of data lineage across enterprise platforms.
  • Establish impact analysis processes for changes to critical data assets.
  • Improve transparency into how data moves from source systems through analytics and AI applications.
  • Support compliance, audit, and operational risk management requirements.

Stakeholder Leadership

  • Partner with business leaders to define ownership and stewardship for critical data domains.
  • Facilitate governance councils and cross-functional data communities.
  • Drive adoption and organizational change management initiatives.
  • Influence senior leaders on the strategic value of governance, semantic layers, and AI-ready data foundations.


Requirements

Required Qualifications

  • 8+ years of experience in Data Governance, Metadata Management, Data Architecture, Analytics, or related disciplines.
  • Hands-on experience with Atlan, Alation, Microsoft Purview, Collibra, or comparable governance platforms.
  • Strong understanding of metadata management, business glossaries, lineage, cataloging, and data quality frameworks.
  • Experience building semantic models, business metrics frameworks, and governed data products.
  • Understanding of modern cloud data platforms including Azure, Snowflake, Databricks, and Microsoft Fabric.
  • Experience driving cross-functional governance programs in large enterprises.
  • Strong communication and stakeholder management skills.

Preferred Qualifications

  • Experience supporting Generative AI, Agentic AI, Knowledge Graph, RAG, or AI governance initiatives.
  • Knowledge of semantic technologies, ontology design, taxonomy management, and knowledge representation.
  • Experience implementing data mesh or domain-oriented data ownership models.
  • Familiarity with AI observability, model governance, and responsible AI principles.
  • Experience defining context frameworks that improve AI and agent understanding of enterprise information.


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