EXL Service

Big Data Engineer

EXL Service$100K — $130K *
Enterprise Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 7-10 years of experience in data engineering with technical leadership and mentoring experience.
  • Proficient in Python with the ability to develop production-grade data solutions.
  • In-depth experience with the Hadoop ecosystem, including Hadoop, Hive, Impala, and HDFS in on-premises contexts.
  • Solid grasp of Apache Spark for developing and tuning distributed data processing jobs.
  • Hands-on experience with job scheduling using CA7, Control-M, or similar enterprise schedulers.
  • Strong understanding of data structures, ETL processes, and SQL.
  • Willingness to learn and apply AI/ML concepts within data engineering workflows.

Responsibilities

  • Lead the creation and upkeep of scalable data pipelines for large datasets.
  • Make architectural decisions and set technical standards for the data engineering team.
  • Mentor and coach fellow data engineers through reviews and problem-solving.
  • Develop and optimize workflows leveraging Python, Spark, and Hadoop tools.
  • Utilize Hadoop components to efficiently manage and query large-scale data.
  • Oversee batch scheduling and job orchestration with enterprise schedulers.
  • Ensure data quality, integrity, and performance across platforms.
  • Partner with analysts and stakeholders to convert data requirements into technical designs.
  • Resolve complex issues in data processing pipelines and act as a tech escalation point.
  • Promote best practices in coding, version control, testing, and documentation.
  • Stay updated on emerging technologies and explore AI/ML applications in data workflows.

Benefits

  • Opportunity to own architectural decisions and influence technical direction.
  • Collaborative environment with cross-functional teams including data analysts and scientists.
  • Mentorship opportunities to guide and develop fellow engineers.
  • Exposure to innovative technologies and the potential to apply AI/ML solutions.
  • Focus on strong coding practices and continuous learning.
Full Job Description
Job Description

Job Description: Big Data Engineer Summary

We are looking for an experienced Big Data Engineer with 7-10 years of hands-on experience to design, build, and maintain scalable data pipelines and processing systems in an on-premises Big Data environment. Beyond strong individual contribution, the ideal candidate will own architecture and design decisions, set technical direction, and mentor and support other developers on the team. The role works closely with cross-functional teams to deliver reliable, high-quality data solutions that support business and analytics needs.

Roles & Responsibilities
  • Lead the design, development, and maintenance of robust, scalable data pipelines for ingestion, transformation, and processing of large datasets in an on-premises environment.
  • Own architectural and design decisions for data solutions, evaluating trade-offs and defining technical standards for the team.
  • Mentor, guide, and support other data engineers through code reviews, design reviews, technical coaching, and hands-on problem-solving.
  • Build and optimize data workflows using Python, Spark, and the Hadoop ecosystem.
  • Work extensively with Hadoop ecosystem components (Hive, HDFS, Impala) to manage and query large-scale data.
  • Manage and optimize batch scheduling and job orchestration using enterprise schedulers such as CA7 or Control-M.
  • Ensure data quality, integrity, and performance across data platforms.
  • Collaborate with data analysts, data scientists, and business stakeholders to translate data requirements into sound technical designs.
  • Troubleshoot and resolve complex issues in data pipelines and production environments, acting as an escalation point for the team.
  • Champion best practices for coding standards, version control, testing, and documentation.
  • Stay current with emerging technologies, particularly AI/ML capabilities, and identify opportunities to apply them to data engineering workflows.

Technical Skills Must Have
  • 7-10 years of overall experience in data engineering, with a proven track record in technical leadership (design ownership, mentoring, guiding development teams).
  • Python - strong hands-on development experience building production-grade data solutions.
  • Big Data / Hadoop ecosystem (Hadoop, Hive, Impala, HDFS) - deep, hands-on experience in on-premises environments.
  • Apache Spark - solid experience developing and tuning large-scale distributed data processing jobs.
  • Job scheduling / orchestration - hands-on experience with CA7 or Control-M (or comparable enterprise schedulers).
  • Strong understanding of data structures, ETL processes, and SQL.
  • Extensive experience with large-scale data processing and distributed systems.
  • Demonstrated ability to make sound architecture/design decisions and to mentor and support other developers.
  • Exposure to AI/ML concepts or tools, with a strong willingness to learn and grow in this space.


Responsibilities

Roles & Responsibilities
  • Lead the design, development, and maintenance of robust, scalable data pipelines for ingestion, transformation, and processing of large datasets in an on-premises environment.
  • Own architectural and design decisions for data solutions, evaluating trade-offs and defining technical standards for the team.
  • Mentor, guide, and support other data engineers through code reviews, design reviews, technical coaching, and hands-on problem-solving.
  • Build and optimize data workflows using Python, Spark, and the Hadoop ecosystem.
  • Work extensively with Hadoop ecosystem components (Hive, HDFS, Impala) to manage and query large-scale data.
  • Manage and optimize batch scheduling and job orchestration using enterprise schedulers such as CA7 or Control-M.
  • Ensure data quality, integrity, and performance across data platforms.
  • Collaborate with data analysts, data scientists, and business stakeholders to translate data requirements into sound technical designs.
  • Troubleshoot and resolve complex issues in data pipelines and production environments, acting as an escalation point for the team.
  • Champion best practices for coding standards, version control, testing, and documentation.
  • Stay current with emerging technologies, particularly AI/ML capabilities, and identify opportunities to apply them to data engineering workflows.


Qualifications

  • 7-10 years of overall experience in data engineering, with a proven track record in technical leadership (design ownership, mentoring, guiding development teams).
  • Python - strong hands-on development experience building production-grade data solutions.
  • Big Data / Hadoop ecosystem (Hadoop, Hive, Impala, HDFS) - deep, hands-on experience in on-premises environments.
  • Base Compensation Range: $100,000- $130,000
  • The posted range is the hiring range for this role - a subset of the broader range available to employees over time - and reflects base salary across our national hiring scale. Final offers are based on several factors, including the candidate's skills and experience, internal pay equity, work location, market conditions for the role, and the specific scope and responsibilities of the position. The top of the range is reserved for candidates who notably exceed the requirements; the lower end applies to those with less experience or fewer preferred qualifications. For positions based in higher-cost zones (e.g., California, New York, New Jersey), actual compensation may exceed the posted range; your recruiter will share specifics during the process.


About EXL Service

EXL Service is a leading operations management and analytics company that helps businesses enhance growth and profitability. The company provides services in areas such as finance and accounting, customer service, and healthcare. EXL Service was founded in 1999 and is headquartered in New York, New York.
Learn more about EXL Service
Size
31,000 employees
Industry

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