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Manager-Data Engineering-Big Data Engineering

Job Description - Manager-Data Engineering-Big Data Engineering

Description

About the Role


We are seeking a highly skilled Lead Data Engineer to drive end-to-end data engineering initiatives, lead cross-functional teams, and deliver scalable, cloud-based data solutions. The ideal candidate will bring deep technical expertise, strong leadership, and the ability to collaborate effectively with global stakeholders in a fast-paced environment.



 

Key Responsibilities


Leadership & Team Management



  • Lead and mentor a team of onshore and offshore data engineers to ensure high-quality deliverables.

  • Provide technical direction, coaching, and knowledge sharing to foster team growth and capability building.

  • Establish and enforce engineering best practices, coding standards, and reusable frameworks.

  • Champion innovation, continuous learning, and thought leadership within the data engineering function.


Project Delivery & Execution



  • Oversee end-to-end project delivery, ensuring timely, high-quality execution aligned with project objectives.

  • Define high-level solution designs, data architectures, and ETL/ELT frameworks for cloud-based data platforms.

  • Drive development, code reviews, unit testing, and deployment to production environments.

  • Ensure optimal performance, scalability, and reliability across data pipelines and systems.


Stakeholder Communication & Collaboration



  • Collaborate with clients, product owners, business leaders, and offshore teams to gather requirements and define technical solutions.

  • Communicate project updates, timelines, risks, and technical concepts effectively to both technical and non-technical stakeholders.

  • Act as the primary point of contact for client technical discussions, solution design workshops, and progress reviews.


Risk & Issue Management



  • Proactively identify project risks, dependencies, and issues; develop and execute mitigation plans.

  • Ensure governance, compliance, and alignment with organizational standards and methodologies.



 

Must-Have Skills



  • 12+ years of experience in Data Engineering with proven experience in delivering enterprise-scale projects.

  • Strong expertise in Big Data concepts, distributed systems, and cloud-native architectures.

  • Proficiency in Snowflake, SQL, and a wide range of AWS services (Glue, EMR, S3, Aurora, RDS, Lambda, Step Functions).

  • Hands-on experience with Python, PySpark, and building cloud-based microservices.

  • Strong problem-solving, analytical skills, and end-to-end ownership mindset.

  • Proven ability to work in Agile/Scrum environments with iterative delivery cycles.

  • Exceptional communication, leadership, and stakeholder management skills.

  • Demonstrated capability in leading onshore–offshore teams and coordinating multi-region delivery efforts.



 

Good-to-Have Skills



  • Experience with DevOps tools (Jenkins, Git, GitHub/GitLab) and CI/CD pipeline implementation.

  • Experience with cloud migration and large-scale modernization projects.

  • Familiarity with the US insurance/reinsurance domain + P&C Insurance knowledge

  • Knowledge of Data Vault 2.0 and modern data modeling techniques.



Responsibilities

About the Role


We are seeking a highly skilled Lead Data Engineer to drive end-to-end data engineering initiatives, lead cross-functional teams, and deliver scalable, cloud-based data solutions. The ideal candidate will bring deep technical expertise, strong leadership, and the ability to collaborate effectively with global stakeholders in a fast-paced environment.



 

Key Responsibilities


Leadership & Team Management



  • Lead and mentor a team of onshore and offshore data engineers to ensure high-quality deliverables.

  • Provide technical direction, coaching, and knowledge sharing to foster team growth and capability building.

  • Establish and enforce engineering best practices, coding standards, and reusable frameworks.

  • Champion innovation, continuous learning, and thought leadership within the data engineering function.


Project Delivery & Execution



  • Oversee end-to-end project delivery, ensuring timely, high-quality execution aligned with project objectives.

  • Define high-level solution designs, data architectures, and ETL/ELT frameworks for cloud-based data platforms.

  • Drive development, code reviews, unit testing, and deployment to production environments.

  • Ensure optimal performance, scalability, and reliability across data pipelines and systems.


Stakeholder Communication & Collaboration



  • Collaborate with clients, product owners, business leaders, and offshore teams to gather requirements and define technical solutions.

  • Communicate project updates, timelines, risks, and technical concepts effectively to both technical and non-technical stakeholders.

  • Act as the primary point of contact for client technical discussions, solution design workshops, and progress reviews.


Risk & Issue Management



  • Proactively identify project risks, dependencies, and issues; develop and execute mitigation plans.

  • Ensure governance, compliance, and alignment with organizational standards and methodologies.



 

Must-Have Skills



  • 12+ years of experience in Data Engineering with proven experience in delivering enterprise-scale projects.

  • Strong expertise in Big Data concepts, distributed systems, and cloud-native architectures.

  • Proficiency in Snowflake, SQL, and a wide range of AWS services (Glue, EMR, S3, Aurora, RDS, Lambda, Step Functions).

  • Hands-on experience with Python, PySpark, and building cloud-based microservices.

  • Strong problem-solving, analytical skills, and end-to-end ownership mindset.

  • Proven ability to work in Agile/Scrum environments with iterative delivery cycles.

  • Exceptional communication, leadership, and stakeholder management skills.

  • Demonstrated capability in leading onshore–offshore teams and coordinating multi-region delivery efforts.



 

Good-to-Have Skills



  • Experience with DevOps tools (Jenkins, Git, GitHub/GitLab) and CI/CD pipeline implementation.

  • Experience with cloud migration and large-scale modernization projects.

  • Familiarity with the US insurance/reinsurance domain + P&C Insurance knowledge

  • Knowledge of Data Vault 2.0 and modern data modeling techniques.



 

 



Qualifications

Educational Qualifications


Bachelor’s or Master’s degree in Computer Science, Engineering, Information Technology, or a related field.



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