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Data Engineer Manager - AWS Databricks

RemoteIndia only
Published
Role
Data Engineering
Experience
Senior
Employment
Full-time
Salary not disclosed
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No BS summary

Senior Data Engineering manager with 7+ years' experience, hands-on with Databricks and AWS, and proven people leadership. Must be able to build and maintain Databricks data pipelines, own data modeling, and improve legacy codebases. Hyderabad-based (Hyderabad, TS, India) onsite role.

Core skills

DatabricksData pipelines

Required skills

AWSGitHubData modeling

Optional skills

Genie (Databricks)

What you'll do

  • Lead, design, and scale data solutions to support Journey Analytics initiatives, with a strong focus on code quality, reusability, and reliable data platforms.
  • Set the technical direction, overseeing the evolution of data architectures, and lead a team of data engineers to deliver high-quality, performant datasets for analytics and reporting use cases.
  • Lead and mentor a team of data engineers while actively contributing to development efforts and setting best practices in coding, architecture, and data engineering standards.
  • Define and drive the technical strategy for Journey Analytics data platforms, while remaining hands-on in the design and implementation of scalable solutions.
  • Actively contribute to the maintenance, optimization, and automation of code repositories in GitHub, ensuring high-quality and consistent development practices.
  • Participate directly in refactoring legacy codebases to improve maintainability, scalability, and reusability across multiple use cases.
  • Design and build modular, reusable data components to support multiple journeys and reduce duplication.
  • Develop and manage automated data pipelines in Databricks, ensuring reliability and scalability for downstream consumption.
  • Design and implement scalable data models to support current and future analytics use cases.
  • Ensure data quality, governance, performance, and reliability across all data pipelines and datasets through both oversight and direct contribution.
  • Collaborate closely with analytics, product, and engineering stakeholders to align data solutions with business needs and priorities.
  • Proactively identify risks, bottlenecks, and improvement opportunities, and take a hands-on role in driving mitigation strategies.
  • Promote continuous improvement of data processes, documentation, and engineering practices through both leadership and execution.

What they require

  • 7+ years of experience in Data Engineering.
  • Strong experience working with GitHub repositories and version control workflows.
  • Hands-on experience developing and maintaining data pipelines in Databricks.
  • Proven experience refactoring and maintaining legacy codebases.
  • Strong understanding of data modeling and reusable component design.
  • Experience building scalable data models for analytics and reporting use cases.
  • Strong focus on data quality, performance, and reliability.
  • Ability to work in cross-functional environments and contribute to continuous improvement.
  • Ability to work independently and take ownership of initiatives after receiving high-level direction, driving tasks forward with minimal supervision.
  • Experience using Genie (Databricks) (Plus).

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What people say about this company

3.8/ 5

Salary not disclosed