Senior Director, Data Architecture (Next Gen)

The Coca-Cola CompanyAtlanta, GA
$217,400 - $245,300Onsite

About The Position

As Senior Director of Next-Gen Data Architecture, you will lead the evolution of our global data ecosystem and help shape the foundation for the next generation of intelligent enterprise computing. In this role, you and your team will act as the Data Architecture Center of Excellence (CoE), empowering and enabling data engineers, platform engineers, and analysts across the enterprise to build robust, future-proof data solutions. You will be responsible for modernizing data platforms, establishing scalable architecture standards, and turning complex business requirements into practical, high-impact solutions. Leading a specialized team of key data architects, this position combines strategic leadership with technical depth, requiring someone who can guide architectural direction while remaining closely connected to implementation and delivery. The ideal candidate is equally comfortable working with executive stakeholders, engineering leaders, and development teams. You will build, manage, and mentor a high-performing organization while helping define the frameworks, platforms, and best practices that support enterprise-scale data initiatives.

Requirements

  • 12+ years of experience in data engineering, architecture, and advanced analytics, with at least 5+ years in a senior leadership capacity.
  • Proven track record of hiring, managing, and mentoring senior technical talent, specifically Enterprise Data Architects, Principal Engineers, or Engineering Managers.
  • Prior experience operating within or leading a Center of Excellence (CoE) or enterprise-wide foundational architecture team, with a strong understanding of enterprise architecture governance and enablement.
  • Ability to translate complex technical concepts into business value for executive stakeholders, while effectively evangelizing architectural standards across diverse engineering teams.
  • Deep architectural understanding and hands-on experience building stream-only architectures (Kappa). Advanced proficiency with streaming technologies such as Apache Kafka, Azure Event Hubs, Spark Structured Streaming (or Flink).
  • Proven experience designing enterprise ontologies, taxonomies, and managing semantic context layers. Experience with Jena/Palantir/Stardog ecosystem capabilities, or comparable semantic/graph platforms is a plus.
  • Hands-on experience with Graph ecosystems (e.g., Neo4j, Azure Cosmos DB Graph API, or similar Graph/Vector databases) and graph query languages.
  • Deep familiarity with integrating and customizing automated development tools (e.g., GitHub Copilot, Codex, etc.).
  • Experience building automated testing frameworks or benchmarking harnesses specifically designed to evaluate automated outputs, agentic workflows, and complex data pipelines.
  • Hands-on experience developing data APIs (REST, GraphQL, or gRPC) and deploying them at enterprise scale using Docker and Azure Kubernetes Service (AKS).
  • Practical experience building agentic workflows for engineering productivity, including pipeline generation, test generation, documentation automation, and observability automation.
  • Deep understanding of Microsoft Fabric (OneLake, Lakehouses, Warehouses) or equivalent modern Lakehouse architectures (Databricks/Delta Lake).
  • Strong proficiency in programming languages relevant to modern data/infrastructure engineering (e.g., Scala, TypeScript).

Nice To Haves

  • Experience with Jena/Palantir/Stardog ecosystem capabilities, or comparable semantic/graph platforms.

Responsibilities

  • Act as the strategic and technical CoE, providing architectural guidance, reference architectures, and ongoing support to enable data engineers, platform engineers, and analysts.
  • Direct, mentor, and develop a team of key data architects, fostering a culture of technical excellence, collaboration, and continuous innovation.
  • Lead the design and implementation of modern data platforms and engineering frameworks that support large-scale business and operational needs, including complex supply chain, manufacturing, retail, and execution systems.
  • Drive the development of graph-based data solutions and semantic models that improve data connectivity, business context, and cross-functional insights across the enterprise.
  • Identify and implement opportunities to leverage AI and automation throughout the data engineering lifecycle, from design and development through operations and optimization.
  • Define scalable API and knowledge-layer architectures that enable consistent access to trusted data and support both operational and analytical workloads.
  • Build and enhance real-time data capabilities that support event-driven processing, operational intelligence, and responsive business applications.
  • Improve engineering efficiency through modern tooling, automation, and platform capabilities. Champion practices that simplify development, strengthen governance, and accelerate delivery while maintaining enterprise standards.

Benefits

  • A full range of medical, financial, and/or other benefits, dependent on the position, is offered.
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