Databricks Solution Architect

Posted Yesterday
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Hiring Remotely in New Jersey, USA
Remote or Hybrid
Expert/Leader
Information Technology • Database • Consulting
The Role
Lead architecture and design of enterprise Azure data platforms centered on Databricks Lakehouse. Define ingestion, transformation, and serving layers; implement PySpark/SQL ETL/ELT, Delta Lake patterns, governance with Unity Catalog and Purview, Spark performance tuning, CI/CD, and provide technical leadership and delivery governance across teams.
Summary Generated by Built In
  • Lead the end-to-end architecture and solution design for enterprise data platforms on Azure, with strong focus on Databricks Lakehouse, Delta Lake, and scalable cloud-native data ecosystems.
  • Define target-state data architecture, ingestion patterns, transformation frameworks, and serving layers to support reporting, advanced analytics, ML, and business-critical decisioning use cases.
  • Design and implement robust ETL/ELT pipelines using PySpark, SQL, Databricks Workflows, Auto Loader, and Delta Live Tables for batch and near real-time processing.
  • Own architecture standards for data modeling, medallion design, reusable engineering patterns, CI/CD, code quality, environment strategy, and release management across Databricks solutions.
  • Drive platform governance and security using Unity Catalog, RBAC/ABAC controls, lineage, auditability, and integration with enterprise governance services such as Purview.
  • Optimize solution performance by tuning Spark workloads, cluster policies, partitioning strategy, file sizing, caching, and compute cost management for large-scale data processing.
  • Collaborate with business stakeholders, product owners, analysts, architects, and downstream consumers to translate functional and non-functional requirements into scalable technical designs.
  • Provide technical leadership to engineering teams by reviewing designs, guiding implementation, resolving architectural bottlenecks, and establishing best practices for Databricks-based delivery.
  • Evaluate and recommend Databricks capabilities such as Photon, serverless compute, Lakehouse Federation, and streaming patterns to improve scalability, maintainability, and time to value.
  • Ensure strong delivery governance through estimation, technical planning, dependency management, risk mitigation, and Agile execution including sprint planning, backlog refinement, and design reviews.
Responsibilities
  • 10-15 years of experience in data engineering, cloud data platform design, or enterprise data architecture, with at least 5+ years of strong hands-on experience on Databricks and Azure.
  • Bachelor’s degree in computer science, Information Technology, Engineering, or a related discipline; master’s degree is preferred.
  • Strong expertise in designing modern data architectures, including Lakehouse, medallion architecture, data modeling, data warehousing, and scalable ingestion and transformation frameworks.
  • Deep technical proficiency in Databricks, PySpark, Python, SQL, Delta Lake, Databricks Workflows, Auto Loader, and Delta Live Tables.
  • Strong experience with Azure cloud services such as Azure Data Factory, Azure Data Lake Storage, Azure Key Vault, Azure DevOps, and integration of Databricks with broader enterprise cloud ecosystems.
  • Hands-on experience in defining architecture standards, reusable design patterns, CI/CD strategy, environment management, and delivery best practices for enterprise-scale data platforms.
  • Experience with data governance, lineage, and security frameworks including Unity Catalog, role-based access controls, and integration with enterprise governance tools such as Azure Purview.
  • Proven ability to optimize large-scale Spark and Databricks workloads, including performance tuning, cluster sizing, workload management, and cost optimization.
  • Experience engaging with business stakeholders, product owners, architects, and engineering teams to convert business requirements into scalable solution designs and implementation roadmaps.
  • Strong communication, leadership, and problem-solving skills with the ability to mentor teams, review technical designs, and drive architecture decisions across cross-functional programs.
  • Preferred: Knowledge of insurance domain data models, regulatory considerations, and analytics use cases relevant to underwriting, claims, pricing, or risk functions.
Qualifications

Bachelor or Master Degree

Skills Required

  • 10-15 years of experience in data engineering, cloud data platform design, or enterprise data architecture
  • At least 5+ years of hands-on experience on Databricks and Azure
  • Bachelor's degree in Computer Science, Information Technology, Engineering, or related discipline
  • Master's degree
  • Strong expertise in Lakehouse architecture, medallion design, data modeling, and scalable ingestion/transformation frameworks
  • Deep technical proficiency in Databricks, PySpark, Python, SQL, Delta Lake, Databricks Workflows, Auto Loader, and Delta Live Tables
  • Experience with Azure services: Azure Data Factory, Azure Data Lake Storage, Azure Key Vault, Azure DevOps and integration with Databricks
  • Hands-on experience defining architecture standards, reusable patterns, CI/CD strategies, environment management, and enterprise delivery best practices
  • Experience with data governance, lineage, Unity Catalog, role-based access controls, and integration with Azure Purview
  • Proven ability to optimize large-scale Spark and Databricks workloads, including tuning, cluster sizing, and cost optimization
  • Experience engaging with stakeholders to translate requirements into scalable designs and implementation roadmaps
  • Strong communication, leadership, mentoring, and problem-solving skills to guide engineering teams and drive architecture decisions
  • Knowledge of insurance domain data models, regulatory considerations, underwriting, claims, pricing, or risk (preferred)
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The Company
HQ: New York, NY
30,246 Employees
Year Founded: 1999

What We Do

Choosing a digital partner is about more than capabilities — it’s about collaboration and character. Unrealistic overhauls and off-the-shelf products ignore what matters most — your unique needs, culture, goals, and your legacy data and technology environments. At EXL, our collaboration is built on ongoing listening and learning to adapt our methodologies. We’re your business evolution partner—tailoring solutions that make the most of data to make better business decisions and drive more intelligence into your increasingly digital operations. Whether your goals are scaling the use of AI and digital, redesign operating models, or driving better and faster decisions, we’re here to partner with you to help you gain—and maintain—competitive advantage with efficient, sustainable models at scale. Our expertise in transformation, data science, and change management helps make your business more efficient and effective, improve customer relationships and enhance revenue growth. Instead of focusing on multi-year, resource- and time-intensive platform designs or migrations, we look deeper at your entire value chain to integrate strategies with impact. We use our specialization in analytics, digital interventions, and operations management—alongside deep industry expertise — to deliver solutions that help you outperform the competition. At EXL, it’s all about outcomes—your outcomes—and delivering success on your terms. Share your goals with us and together, we’ll optimize how you leverage data to drive your business forward. For more information, visit www.exlservice.com.

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