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Salary
$74k – $147k per year (Estimated)
Location
In office (Ann Arbor)
Seniority
Senior · 8+ years exp
Employment
Full-Time
Overview
Company
Impact
Profile match
Founded in 1960, Domino's is the largest pizza company in the world based on global retail sales, operating an extensive network of thousands of corporate and franchise stores across more than 90 markets. Headquartered in Ann Arbor, Michigan, the company pioneered pizza delivery and remains a industry leader in digital ordering, leveraging proprietary e-commerce platforms, tracking apps, and automated delivery innovations. The company focuses on value-driven delivery and carryout dining, serving millions of customers daily with a menu centered on customizable pizzas, wings, sandwiches, and desserts.

Domino’s is a purpose-inspired, performance-driven company powered by exceptional people who are committed to feeding the power of possible-one pizza at a time. Founded in 1960 as a single store in Ypsilanti, Michigan, Domino’s has grown into the largest pizza company in the world, with more than 22,300 stores across 90+ markets. Our success is built on the strength of our people, technology, and franchise system. As a leader in innovation, we continue to transform the pizza and QSR industry while creating opportunities for team members to learn, grow and thrive. If you're ready to make an impact, build a meaningful career and help shape what's next, there's a place for you at Domino's.

As a Senior Data Engineer, you will operate as a technical expert responsible for designing, building, and scaling enterprise-grade data engineering solutions across our cloud-native data platform on Azure and Databricks. This role requires deep technical knowledge, strong engineering judgment, and the ability to deliver high-impact solutions that support analytics, AI/ML, operational reporting, and streaming data solutions.

You will partner closely with Data Architects, Platform Admins, Cloud Engineers, Product Owners, and cross-functional stakeholders to translate strategy and architecture into production-grade high-quality solutions. You will lead complex technical work within your domain, mentor engineers, raise engineering standards, and influence delivery across multiple products, platforms, and business capabilities.

GENERAL RESPONSIBILITIES

  • Apply advanced technical knowledge to design, build, and optimize scalable data pipelines, reusable engineering frameworks, and platform capabilities using Azure Data Factory, Databricks, Spark, streaming and related cloud-native technologies.
  • Lead engineering design and implementation for ingestion, transformation, and data product frameworks that support structured, semi-structured, and unstructured data at enterprise scale.
  • Implement automation for data ingestion, processing, validation, and monitoring to ensure reliability and observability.
  • Drive implementation of future-state data architecture and cloud migration patterns, ensuring solutions are reliable, secure, maintainable, and aligned to enterprise modernization goals.
  • Optimize data workflows for performance and cost, leveraging Delta Lake, partitioning, caching, and compute scaling strategies.
  • Define data access controls and RBAC policies in collaboration with security and governance teams.
  • Provide technical leadership within the team by mentoring engineers, reviewing solution designs, setting engineering standards, and promoting best practices for CI/CD, testing, automation, observability, and cloud-native delivery.
  • Partner with AI/ML, analytics, and business teams to enable high-value real-time and batch data activation use cases that improve decision-making and business outcomes.
  • Ensure compliance with data governance, privacy, and security standards.
  • 8+ years of experience in data engineering, including experience delivering complex, enterprise-scale data solutions; Azure experience preferred.
  • Advanced technical expertise in Cloud based data warehouses (Databricks Preferred), Spark, Delta Lake, Azure Services, data integration, data modeling, and performance optimization.
  • Proven experience in building and optimizing large-scale ETL/ELT pipelines and data lakehouse architectures.
  • Solid understanding of data lakehouse modeling, data warehousing, and performance tuning.
  • Experience with Customer 360 data products, identity resolution, customer profile enrichment, and activation use cases is highly desired.
  • Experience designing and supporting streaming data solutions is highly desired, including Kafka or similar event streaming platforms.
  • Martech exposure is preferred, including experience supporting marketing, personalization, campaign, loyalty, or customer engagement data use cases.
  • Experience with Infrastructure as Code (Terraform, ARM templates) and DevOps tools (Git, Azure DevOps, Jenkins).
  • Familiarity with RBAC, data security, and compliance frameworks.
  • Strong communication and collaboration skills, with the ability to influence technical direction, clarify tradeoffs, and align engineering decisions across teams and stakeholders.
  • Experience with Agile methodologies and working in cross-functional product teams.
  • Demonstrated ability to lead through influence, mentor engineers, manage technical ambiguity, and drive outcomes across a broad scope of products, platforms, and stakeholders.

Benefits:

  • Paid Holidays and Vacation
  • Medical, Dental & Vision benefits that start on the first day of employment
  • No-cost mental health support for employee and dependents
  • Childcare tuition discounts
  • No-cost fitness, nutrition, and wellness programs
  • Fertility benefits
  • Adoption assistance
  • 401k matching contributions
  • 15% off the purchase price of stock
  • Company bonus

All your information will be kept confidential according to EEO guidelines.

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