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Data Engineering Developer - Assistant Manager

State Street

Data Engineering Developer - Assistant Manager

full-timePosted: Aug 24, 2026Updated: Aug 28, 2026India, Hyderabad

Job Description

Job Title: Senior Data Engineer / Data Engineering Developer (Databricks & Scala)Role SummaryWe are seeking a highly skilled Data Engineer with strong expertise in Databricks, Apache Spark, and Scala to design, develop, and optimize large-scale data processing solutions. The ideal candidate will have hands-on experience building distributed data pipelines, implementing scalable ETL frameworks, and delivering cloud-native data solutions on Azure.Key ResponsibilitiesDesign, develop, and maintain scalable data pipelines using Databricks, Apache Spark, and Scala.Build ingestion, transformation, and validation frameworks for high-volume data processing.Develop and optimize Spark jobs for performance, scalability, and reliability.Implement and manage Databricks workflows, job orchestration, and scheduling.Troubleshoot production issues, performance bottlenecks, and pipeline failures.Optimize cluster utilization, Spark execution plans, and data processing efficiency.Work with cross-functional teams to design data architectures and integration solutions.Implement best practices for coding, testing, CI/CD, and deployment.Support production environments and participate in incident resolution and root cause analysis.Collaborate in Agile teams to deliver high-quality data products.Required SkillsStrong hands-on experience in:DatabricksApache SparkScalaSpark SQLPySparkExperience in:Distributed data processing frameworksETL/ELT pipeline developmentData modeling and data warehousing conceptsPerformance tuning and optimization of Spark applicationsCloud experience:Microsoft AzureAzure Data Lake Storage (ADLS)Azure Data Factory (ADF)Strong SQL development and query optimization skills.Experience with source control systems such as Git/GitHub.Strong analytical and debugging skills.Preferred SkillsDelta LakeUnity CatalogCI/CD pipelines (Azure DevOps, Harness)SnowflakeData Quality and Validation FrameworksFinancial Services / Reference Data domain knowledgeExperience with AI-assisted development tools such as GitHub CopilotEducation & ExperienceBachelor's or Master's degree in Computer Science, Engineering, or related field.10+ years of experience in Data Engineering.6+ years of hands-on Databricks and Spark development experience.Strong experience developing production-grade Scala applications.Nice-to-HaveDatabricks CertificationAzure CertificationExperience with Real-Time Streaming (Kafka, Spark Structured Streaming)Exposure to Lakehouse architecture patternsAbout State StreetAcross the globe, institutional investors rely on us to help them manage risk, respond to challenges, and drive performance and profitability. We keep our clients at the heart of everything we do, and smart, engaged employees are essential to our continued success.We are committed to fostering an environment where every employee feels valued and empowered to reach their full potential. As an essential partner in our shared success, you’ll benefit from inclusive development opportunities, flexible work-life support, paid volunteer days, and vibrant employee networks that keep you connected to what matters most. Join us in shaping the future.As an Equal Opportunity Employer, we consider all qualified applicants for all positions without regard to race, creed, color, religion, national origin, ancestry, ethnicity, age, disability, genetic information, sex, sexual orientation, gender identity or expression, citizenship, marital status, domestic partnership or civil union status, familial status, military and veteran status, and other characteristics protected by applicable law.Discover more information on jobs at StateStreet.com/careersRead our CEO Statement

Locations

  • India, Hyderabad

Skills Required

  • source control systems such as Git/GitHubintermediate
  • AI-assisted development tools such as GitHub Copilotintermediate
  • Data Engineeringintermediate
  • Real-Time Streamingintermediate

Required Qualifications

  • Strong hands-on experience in:DatabricksApache SparkScalaSpark SQLPySpark (experience)
  • Experience in:Distributed data processing frameworksETL/ELT pipeline developmentData modeling and data warehousing conceptsPerformance tuning and optimization of Spark applications (experience)
  • Cloud experience:Microsoft AzureAzure Data Lake Storage (ADLS)Azure Data Factory (ADF) (experience)
  • Strong SQL development and query optimization skills. (experience)
  • Experience with source control systems such as Git/GitHub. (experience)
  • Strong analytical and debugging skills. (experience)

Preferred Qualifications

  • Delta Lake (experience)
  • Unity Catalog (experience)
  • CI/CD pipelines (Azure DevOps, Harness) (experience)
  • Snowflake (experience)
  • Data Quality and Validation Frameworks (experience)
  • Financial Services / Reference Data domain knowledge (experience)
  • Experience with AI-assisted development tools such as GitHub Copilot (experience)
  • Education & Experience (experience)
  • Bachelor's or Master's degree in Computer Science, Engineering, or related field. (degree in master)
  • 10+ years of experience in Data Engineering. (experience, 10 years)
  • 6+ years of hands-on Databricks and Spark development experience. (experience, 6 years)
  • Strong experience developing production-grade Scala applications. (experience)
  • Databricks Certification (certification)
  • Azure Certification (certification)
  • Experience with Real-Time Streaming (Kafka, Spark Structured Streaming) (experience)
  • Exposure to Lakehouse architecture patterns (experience)

Responsibilities

  • Design, develop, and maintain scalable data pipelines using Databricks, Apache Spark, and Scala.
  • Build ingestion, transformation, and validation frameworks for high-volume data processing.
  • Develop and optimize Spark jobs for performance, scalability, and reliability.
  • Implement and manage Databricks workflows, job orchestration, and scheduling.
  • Troubleshoot production issues, performance bottlenecks, and pipeline failures.
  • Optimize cluster utilization, Spark execution plans, and data processing efficiency.
  • Work with cross-functional teams to design data architectures and integration solutions.
  • Implement best practices for coding, testing, CI/CD, and deployment.
  • Support production environments and participate in incident resolution and root cause analysis.
  • Collaborate in Agile teams to deliver high-quality data products.

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