Live opening · Posted 1 day ago

Hadoop / PySpark

Infosys · Bengaluru East, Karnataka, India (On-site)
Linkedin No
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At a glance

The key details from the original listing.

Posted 1 day ago
CompanyInfosys
LocationBengaluru East, Karnataka, India (On-site)
Work modeNo
SourceLinkedin
Listed1 day ago

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About the role

Description supplied by the original job listing.

Good to have skills: Spark SQL, YARN, HDFS, Oozie, Airflow
Key Responsibilities:
Lead the design and development of scalable Big Data solutions using Hadoop and PySpark for batch and large-scale processing.
Architect and implement end-to-end data pipelines, ensuring reliability, performance tuning, and efficient resource utilization on Hadoop clusters.
Develop and optimize Hive data models, queries, and partitioning strategies to support analytics and downstream consumption.
Drive technical planning, estimation, and delivery for data engineering initiatives, ensuring timelines and quality standards are met.
Establish coding standards, review code, and enforce best practices for maintainability, testing, and production readiness.
Troubleshoot production issues, perform root-cause analysis, and implement preventive measures to improve stability and throughput.
Collaborate with product, analytics, and platform teams to translate requirements into scalable technical solutions.
Mentor team members, guide technical decisions, and support skill development across Hadoop, PySpark, Big Data, and Hive. Minimum Qualifications:
Education: BTECH, MTECH, MCA, MSC (or equivalent).
5–9 years of overall experience with strong hands-on expertise in Hadoop and PySpark for large-scale data processing.
Proven experience building and maintaining Big Data pipelines and working with Hive for querying and data modeling.
Strong understanding of distributed processing concepts, performance optimization, and data reliability practices.
Experience leading technical execution through code reviews, design discussions, and delivery ownership. Preferred Qualifications:
Experience designing reusable frameworks and standardized pipeline patterns to improve team productivity and consistency.
Strong expertise in optimizing Spark jobs (partitioning, caching, shuffles) and Hive performance (file formats, partitions, bucketing).
Experience implementing data quality checks, monitoring, and operational dashboards for production pipelines.
Ability to drive stakeholder communication, manage technical trade-offs, and lead solutioning for complex data use cases.
Demonstrated mentoring and leadership experience, enabling teams to deliver high-quality Big Data solutions at scale.

Work arrangement
No

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