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Lead Data Engineer

Ujjivan Small Finance Bank

RemoteFull timeMid level₹19k – ₹35kPosted today
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About the role

POSITION DESCRIPTION

JOB TITLELead-Data Engineer

GRADE VP

DEPARTMENTDATA SCIENCE AND DECISION MANAGEMENT

LOCATIONHO(Bengaluru)

SUB-DEPARTMENT DSDM

TYPE OF POSITIONFull-time

REPORTS TO

REPORTING INTOSenior Data Engineers, Data Engineers, Senior Data Quality Analyst/ Data Quality Analyst

ROLE PURPOSE & OBJECTIVE

The Lead-Data Engineer will be responsible for architecting, building, and governing enterprise-scale data pipelines and platforms for Ujjivan Small Finance Bank. The role ensures secure, high-quality, reliable, and timely data availability to support analytics, regulatory reporting, risk management, and AI/ML initiatives.

This role provides technical and people leadership, defines data engineering standards, and acts as a key interface between business, analytics, governance, and technology teams.

KEY DUTIES & RESPONSIBILITIES OF THE ROLE

  1. Business/ Financials
  • Design and own end-to-end data pipeline architecture across batch and near real-time processing aligned to enterprise strategy.
  • Define and govern bronze, silver, and gold data layer architecture for enterprise consumption.
  • Enable analytics, ML, and AI use cases by delivering model-ready and feature-ready datasets that drive business outcomes.
  • Optimize data pipeline performance and cost efficiency.
  • Establish CI/CD pipelines for data engineering, including version control, testing, and controlled deployments.
  • Contribute to planning, budgeting, and prioritization of data engineering initiatives aligned to business goals.
  1. Customer (Both Internal & External)
  • Collaborate with business, analytics, and risk teams to translate requirements into scalable data solutions.
  • Lead ingestion of data from Core Banking, LOS, LMS, Collections, CRM, Payments, Finance, and external data sources to support internal and external consumers.
  • Enable timely, reliable, and high-quality data availability for stakeholders across the organization.
  • Partner with Data Quality & Governance teams to operationalize Critical Data Elements (CDEs), lineage, and metadata for stakeholder trust and usability.
  1. Internal Process
  • Ensure pipeline scalability, fault tolerance, restartability, and SLA adherence.
  • Implement workflow orchestration, dependency management, backfills, and automated retries.
  • Embed automated data quality checks, reconciliation controls, and anomaly detection.
  • Ensure secure data handling, including masking, encryption, and role-based access control.
  • Ensure compliance with regulatory, audit, and information security requirements.
  • Comply with internal SLAs, policies, and standard operating procedures.
  • Drive process management and continuous process excellence across data engineering workflows
  1. Innovation & Learning
  • Upskill team members to new age technologies with respect to machine learning and credit modelling. Enhance on-job self-learning related to analytics techniques/tools
  • Ensure timely completion of training / learning programs assigned time to time

MINIMUM REQUIREMENTS OF KNOWLEDGE & SKILLS

Educational

Qualifications

  • Bachelor’s or Master’s degree in engineering, Computer Science, or related field

Experience Range (Years and Core Experience Type)

  • 12-15 years of experience in data engineering or large-scale data platform development.
  • Proven experience in banking or financial services data environments.
  • Demonstrated experience leading teams and enterprise data programs.

Certifications

  • NA/ Good to have

Functional Skills

  • Advanced SQL and strong programming skills in Python / Scala and pyspark.
  • Deep understanding of Cloud architecture and Devops
  • Strong experience with ETL/ELT frameworks and distributed data processing.
  • Hands-on experience with data orchestration and scheduling frameworks.
  • Deep understanding of data warehousing, data lakes, and layered data architectures.
  • Expertise in data quality, reconciliation, metadata management, and data lineage.
  • Strong knowledge of CI/CD, version control (Git), and automated testing for data pipelines.
  • Experience with data security, masking, encryption, and role-based access control.
  • Exposure to streaming or near real-time data processing is desirable.
  • Understanding of ML/AI data requirements and feature engineering pipelines

Behavioral Skills

  • Leadership skills to manage a team of data quality Analysts and data engineers
  • Excellent listening, interpersonal, communication and problem-solving skills
  • Demonstrated ability to work effectively in teams, in both a lead and support role
  • Effective time management skills, including demonstrated ability to manage and prioritize multiple tasks and projects
  • Ability to build strong relationships both internally and externally
  • Exceptionally strong organizational, problem-solving and communication skills
  • Structured thinker, effective communicator with excellent written communication skills

Competencies

  • A passion for constantly learning and applying new technologies and programming languages in a constantly evolving environment
  • Demonstrated ability to learn new techniques and troubleshoot code without support
  • Prior people management experience, with tried-and-true approaches for mentoring junior staff
  • Understanding of the financial sector, to recognize and drive forward opportunities where data engineering can transform the bank
  • Skilled at influencing and communicating to various stakeholders up to executive level

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