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Infosys

Data Engineer - RegTech

Bangalore, India

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hirly's read of this role

Role family
Data & ML
Seniority
Mid level
Country
IN
Work mode
On-site / unstated
First seen by hirly
27 Sept 2026

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the posting

As a Data Engineer, you will design and implement data ingestion, canonical mapping, validation, lineage and data processing capabilities for an enterprise platform supporting regulated workflows.

You will work with architects, backend engineers, AI engineers, QA and domain specialists to ensure data is reliable, traceable, governed and reusable across modules.

Responsibilities

Design and build data ingestion pipelines for files, APIs, SFTP sources, databases and enterprise data extracts.

Implement canonical data models, source-to-target mapping, transformation rules, validation checks, rejected-record handling and lineage capture.

Develop data quality checks, reconciliation routines, control result tables, exception datasets and metadata structures for auditable data processing.

Work with PostgreSQL, SQL, object storage, data lake patterns, ETL/ELT tools and batch processing frameworks as needed.

Partner with AI engineers to provide clean, contextual and grounded data for AI summaries, narratives, retrieval and explanations.

Create data dictionaries, mapping specifications, interface contracts, test datasets and data-quality documentation.

Support performance tuning, partitioning, indexing, data retention, archival and privacy-aware data handling.

Work with QA teams to defi

Technical requirements

Minimum 7 years of experience in data engineering, ETL/ELT development, data warehousing, data platform engineering or related roles.

Strong SQL skills and hands-on experience with relational databases such as PostgreSQL, SQL Server, Oracle or MySQL.

Experience designing ingestion pipelines, transformations, validation rules, data quality checks and source-to-target mapping specifications.

Understanding of data modeling, canonical models, metadata, lineage, audit fields, reconciliation and data quality concepts.

Experience with Python, Spark, Databricks, Azure Data Factory, dbt, Airflow or equivalent data engineering tools is preferred.

Ability to work with structured, semi-structured and file-based data formats such as CSV, JSON, Excel, XML and Parquet.

Strong documentation discipline and ability to collaborate with functional SMEs and engineers on data requirements.

Education

Bachelor of Engineering

Original posting on Infosys's site ↗

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