Lead Data Engineer - Assistant Vice President

STATE STREET CORPORATION

Bengaluru

Hybrid

INR 3,500,000 - 7,000,000

Full time

2 days ago
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Job summary

State Street Corporation in Bengaluru seeks a Senior Data Engineer/SME to design, build, and support scalable data pipelines and cloud data solutions. The role emphasizes Databricks, PySpark, Python, AWS, and SQL with enterprise data integration experience preferred.

You will collaborate with Architecture, Security, engineering, and platform teams to deliver reliable, production-grade workloads while maintaining data quality and operational excellence.

Qualifications

  • 10+ years of overall software/data engineering experience.
  • 8+ years of hands-on data engineering & Devops experience.
  • Proven experience with Databricks, PySpark/Spark, and cloud-based data engineering.

Responsibilities

  • Design, develop, and maintain scalable ETL/ELT pipelines.
  • Build and optimize data processing solutions using Python and PySpark.
  • Develop production-grade workloads on Databricks and AWS.
  • Implement cloud-native data engineering solutions on AWS.
  • Collaborate with architecture, security, platform, and business teams.

Skills

Databricks
PySpark
Python
AWS
SQL
Data pipelines

Education

Bachelor's degree (CS/IT/Engineering)
Master's degree desirable

Tools

Snowflake
CI/CD

Job description

Job Summary

We are seeking a Senior Data Engineer / SME to join the SSIM Business Architecture vertical in a hands‑on Individual Contributor (IC) role. The role requires strong expertise in Databricks, Python, PySpark, AWS, and SQL to design, build, and support scalable, production‑grade data pipelines and cloud data solutions. Snowflake and enterprise data integration experience are desired. The successful candidate will demonstrate strong technical ownership, problem‑solving skills, and engineering best practices across the data ecosystem.

Location

Bangalore

Business Architecture

The role sits within the SSIM Business Architecture vertical and requires close collaboration with Architecture, Security, engineering, platform, and business technology stakeholders.

Working Conditions

Hybrid working: The role requires 4 days per week working from the office, in line with the applicable workplace expectations.
Working hours: The primary working window will be 12:00 PM to 9:00 PM India time, providing alignment with US stakeholders and teams.
Flexibility: Given the enterprise and production nature of the role, the individual must be flexible to work outside standard hours and, where required, over weekends to support critical deliveries, production issues, releases, DR or other business needs.

Key Responsibilities
  • Design, develop, and maintain scalable ETL/ELT, data ingestion, and transformation pipelines.
  • Build and optimize data processing solutions using Python and PySpark.
  • Develop and support production‑grade workloads and pipelines on Databricks.
  • Design and implement cloud‑native data engineering solutions on AWS.
  • Work with large‑scale structured and unstructured datasets.
  • Optimize Spark and Databricks workloads for performance, scalability, reliability, and cost efficiency.
  • Develop reusable data engineering components, frameworks, and engineering patterns.
  • Implement data quality, validation, reconciliation, and monitoring controls.
  • Troubleshoot complex production issues, perform root cause analysis, and implement sustainable fixes.
  • Support CI/CD, testing, deployment, monitoring, and operational reliability.
  • Act as a Data Engineering SME, providing technical guidance, design reviews, and code reviews.
  • Collaborate with architecture, application, cloud, platform, and business teams to deliver enterprise data solutions.
  • Drive automation, standardization, and continuous improvement across the data engineering landscape.
Required Skills
  • Strong hands‑on experience in Data Engineering.
  • Strong hands‑on experience with Databricks.
  • Advanced programming skills in Python and PySpark.
  • Strong experience with AWS cloud‑based data engineering.
  • Strong proficiency in SQL.
  • Experience designing and supporting enterprise ETL/ELT and data pipelines.
  • Strong understanding of Apache Spark and distributed data processing.
  • Experience with data lake and lakehouse architecture.
  • Strong understanding of data modeling, data integration, and data quality principles.
  • Experience with CI/CD and modern engineering practices.
  • Experience supporting business‑critical production data platforms.
  • Strong troubleshooting, debugging, and root cause analysis skills.
  • Strong communication and stakeholder‑management capabilities.
Desired Skills
  • Experience with Snowflake data engineering and integration.
  • Knowledge of Snowflake databases, schemas, warehouses, security, and performance optimization.
  • Experience integrating Databricks/AWS data pipelines with Snowflake.
  • Experience with GoldenGate, AWS DMS, or similar data replication technologies.
  • Knowledge of data governance, lineage, metadata management, and auditing.
  • Experience with data quality and reconciliation frameworks.
  • Exposure to enterprise monitoring and observability solutions.
  • Experience working in financial services or other regulated environments.
Experience Requirements
  • 10+ years of overall experience in software engineering, data engineering, or related technology roles.
  • 8+ years of hands‑on data engineering & Devops experience.
  • 7+ years of relevant experience across Databricks, PySpark/Spark, and cloud‑based data engineering preferred.
  • Proven experience designing, developing, and supporting enterprise‑scale production data pipelines and platforms.
  • Demonstrated ability to operate as a hands‑on technical SME in complex enterprise environments.
Education Requirements
  • Bachelor’s degree in Computer Science, Information Technology, Engineering, Data Science, or a related technical discipline.
  • Master’s degree in a relevant discipline is desirable.
Technology Stack
  • Core / Mandatory: Databricks | Python | PySpark | AWS | SQL | Apache Spark | ETL/ELT | Data Pipelines | Data Lake/Lakehouse
  • Desired: Snowflake | GoldenGate | AWS DMS | Data Governance | Data Lineage | Data Quality | Observability
About State Street

Across 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.

Equal Opportunity Employer

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/careers

Read our CEO Statement

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/careers

Read our CEO Statement

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