Subway

Data Architect

Subway$120K — $145K *
Information Technology
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • Deep expertise with the Databricks platform and ecosystem including Delta Lake and Unity Catalog.
  • Strong understanding of modern data architectures such as lakehouse and data mesh concepts.
  • Expert-level proficiency in SQL and Python/PySpark; Scala knowledge is a plus.
  • Experience with enterprise-scale distributed data processing frameworks (e.g., Apache Spark).
  • Familiarity with cloud platforms (AWS, Azure, or GCP) and their native data services.
  • Proficiency in orchestration tools like Databricks Workflows or Airflow.
  • Experience with data governance and access-control frameworks (RBAC/ABAC).
  • Strong communication skills to influence architecture decisions.

Responsibilities

  • Define and lead enterprise data architecture on Databricks including lakehouse and streaming solutions.
  • Establish migration patterns for modernizing legacy data warehouses onto Databricks.
  • Collaborate with Data Engineering teams to implement robust data frameworks and pipeline orchestration.
  • Define and enforce data governance practices using Unity Catalog and secure access controls.
  • Advise analytics and business teams on data platform architecture.
  • Mentor engineers on Databricks best practices and drive cost optimization strategies.
  • Track platform KPIs related to reliability and performance of data pipelines.

Benefits

  • Insurance Plans (Medical, Life)
  • Pension/401K/RSP (country specific)
  • Competitive Bonus
  • Mobility Allowance
  • Tuition Reimbursement
  • Company Holidays
  • Volunteering time
  • And More.....
Full Job Description
Data Architect

Franchise World Headquarters, LLC

Position Overview

The Data Architect is a senior technical authority responsible for defining and evolving the enterprise data platform architecture built on Databricks. This role leads the design of lakehouse, streaming, and batch data solutions that power analytics, reporting, and AI/ML use cases across the business, and guides the modernization of legacy data warehouse workloads onto a modern Databricks lakehouse. The Senior Data Architect partners closely with Data Engineering, Analytics, Platform, Security, and Business teams to ensure data solutions are scalable, secure, cost-efficient, and aligned with enterprise architecture standards, while mentoring engineers on Databricks best practices.

Responsibilities
• Define and lead enterprise architecture for data platforms built on Databricks - including lakehouse, streaming, and batch architectures; architect Medallion (Bronze / Silver / Gold) pipeline patterns and design self-service capabilities leveraging Unity Catalog, Delta Lake, and Delta/Iceberg interoperability for domain teams.
• Define architecture and migration patterns for modernizing legacy data warehouse workloads (e.g., Redshift, Snowflake) onto the Databricks lakehouse; establish architecture standards, design patterns, and technical guardrails across the data engineering organization.
• Partner with Data Engineering teams to implement robust, reusable frameworks and pipeline orchestration; guide adoption of Databricks features - Delta Live Tables, Unity Catalog, MLflow, Databricks Workflows - and establish monitoring, observability, and reliability standards for production data pipelines.
• Define and enforce data governance practices - data quality, lineage, cataloging, and access controls using Unity Catalog; implement secure data access models (RBAC/ABAC) and champion metadata management and data-contract enforcement as core architecture practices.
• Serve as the technical authority for data platform architecture, advising Analytics, BI, Data Science, and Product teams; lead architecture and design reviews for complex data initiatives; influence technology selection and long-term platform direction.
• Mentor data engineers and architects on Databricks best practices and modern data architecture patterns; drive cost-optimization strategies for Databricks and cloud compute/storage; define and track platform KPIs - reliability, data freshness, SLA adherence, and DBU consumption efficiency.

Qualifications
• Deep expertise with the Databricks platform and ecosystem - Delta Lake, Unity Catalog, MLflow, Databricks Workflows, and Delta Live Tables.
• Strong understanding of modern data architectures: lakehouse, data lake, data warehouse, and data mesh concepts.
• Expert-level proficiency in SQL and Python/PySpark; working knowledge of Scala is a plus.
• Experience with distributed data processing frameworks (e.g., Apache Spark) at enterprise scale.
• Experience with cloud platforms (AWS, Azure, or GCP) and native data services.
• Proficiency with orchestration tools such as Databricks Workflows, Airflow, or Azure Data Factory.
• Experience with data governance, security, and access-control frameworks (RBAC/ABAC).
• Experience with data-quality and observability tooling (e.g., Great Expectations, Monte Carlo, Databricks Lakehouse Monitoring).
• Working knowledge of Infrastructure-as-Code (Terraform, Pulumi, or ARM/Bicep).
• Ability to translate business requirements into scalable, cost-efficient technical designs.
• Strong communication skills and ability to influence architecture decisions across engineering and business teams.
• Bachelor's degree in Computer Science, Engineering, Data, Information Systems, or a related field (or equivalent practical experience).
• 8-12+ years of experience in data engineering, data architecture, or platform engineering.
• Demonstrated experience architecting production-grade data platforms on Databricks, Snowflake, and/or Amazon Redshift.
• Experience operating cloud-based, distributed data platforms at enterprise scale.

Preferred Qualifications
• Databricks Certified Data Engineer Professional or Databricks Certified Data/AI Solutions Architect.
• Experience leading large-scale data platform migrations (e.g., Redshift to Databricks, on-prem to cloud).
• Exposure to ML/AI platform engineering - feature stores, model serving, and MLOps integration.
• Familiarity with Microsoft Purview, Collibra, or Alation for enterprise data governance.
• Advanced degree (Master's) in Computer Science, Engineering, or a related field.
• Experience in QSR, Retail, CPG, or Franchise industry environments.

What do we offer?
• Insurance Plans (Medical, Life)
• Pension/401K/RSP (country specific)
• Competitive Bonus
• Mobility Allowance
• Tuition Reimbursement
• Company Holidays
• Volunteering time
• And More.....

About Subway

Subway is a fast food restaurant chain that specializes in submarine sandwiches and salads. The company was founded in 1965 by Fred DeLuca and Peter Buck and is headquartered in Milford, Connecticut. Subway has over 44,000 locations in more than 100 countries, making it the largest fast food chain in the world by number of locations. The company is known for its customizable sandwiches and healthy options, such as its Fresh Fit menu. Subway is a privately held company and does not disclose its financial information.
Learn more about Subway
Size
450,000 employees
Industry
Founded
2007

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