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Infosys

Azure Databricks, Genie

Pune, India

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hirly's read of this role

Seniority
Mid level
Country
IN
Work mode
On-site / unstated
First seen by hirly
28 Sept 2026

Derived automatically from the posting. Upload your resume above to see how the role scores against it.

the posting

Join a high-impact data engineering team where you’ll lead the design and delivery of modern analytics solutions using Azure Databricks and Genie. In this role, you’ll collaborate closely with data engineers, platform teams, and business stakeholders to turn raw data into reliable, scalable, and actionable insights. You’ll be trusted to drive technical decisions, guide implementation standards, and mentor team members—while keeping performance, cost, and governance at the center of every solution. If you enjoy solving complex data challenges, building robust pipelines, and shaping best practices that help teams move faster with confidence, this opportunity offers the right mix of ownership, collaboration, and growth.

Responsibilities

Key Responsibilities:

Solution Delivery & Leadership

Lead end-to-end implementation of data engineering solutions on Azure Databricks, ensuring scalability, reliability, and maintainability.

Drive technical design discussions and translate business requirements into well-structured Databricks/Genie-based solutions.

Provide technical guidance, code reviews, and mentorship to ensure consistent engineering standards across the team.

Databricks & Genie Development

Build and optimize notebooks, jobs, and workflows leveraging Azure Databricks and Genie capabilities.

Develop reusable components and patterns to accelerate delivery across multiple use cases.

Troubleshoot production issues, perform root-cause analysis, and implement preventive improvements.

Performance, Quality & Operations

Optimize cluster configurations, job performance, and resource usage to balance speed and cost.

Establish monitoring and operational practices for pipeline health, failures, and SLAs.

Ensure data quality checks and validation steps are embedded into pipelines and workflows.

Minimum Qualifications:

5–8 years of overall experience in data engineering / analytics engineering roles with ownership of production-grade delivery.

Strong hands-on experience with Azure Databricks and Genie for building and managing data workflows.

Solid experience with Databricks development and operationalization (jobs, workflows, notebooks).

Ability to lead technical discussions, perform reviews, and guide implementation best practices.

Education: BTECH, MTECH, MCA, MSC.

Technical requirements

Primary skills: Azure Databricks, Genie

Additional responsibilities

Preferred Qualifications:

Experience designing scalable data processing patterns and reusable frameworks within Databricks environments.

Proven track record of performance tuning and cost optimization for Databricks workloads in enterprise settings.

Experience establishing engineering standards (branching, reviews, release practices) and mentoring team members.

Strong stakeholder management skills with the ability to align technical delivery to business outcomes.

Exposure to production support models, incident handling, and continuous improvement for data platforms.

Education

MCA,MTech,Bachelor of Engineering,BTech

Original posting on Infosys's site ↗

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