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Norwin Technologies

Data Engineer

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Summary

Norwin Technologies is hiring a Data Engineer in Bangalore to build batch and real-time data pipelines for fraud detection, reporting, and machine learning. Day-to-day work centers on Apache Spark, Kafka, and Snowflake, with cloud data solutions on AWS and/or Azure.

Job description

Role Overview

Seeking a Data Engineer to build and optimize scalable data solutions for Fraud Detection, Reporting, and Machine Learning. This individual contributor role focuses on real-time streaming, large-scale data processing, cloud platforms, and analytics engineering. The ideal candidate has strong expertise in Apache Spark, Kafka, Snowflake, and AWS/Azure.


Key Responsibilities:

  • Build and maintain scalable batch and real-time data pipelines for fraud analytics.
  • Develop and optimize Spark-based data processing frameworks.
  • Design Kafka-based streaming and event-driven architectures.
  • Implement efficient data ingestion frameworks and integrate multiple data sources.
  • Build and support Snowflake data warehouse and data lake solutions.
  • Develop data models for reporting, analytics, ML, and fraud investigations.
  • Design scalable cloud solutions using AWS and/or Azure.
  • Ensure data quality, governance, reliability, monitoring, and compliance.
  • Partner with Data Scientists, Fraud Analysts, and Engineering teams to deliver data-driven solutions.


Required Qualifications:

  • 4+ years of experience in Data Engineering or Big Data Engineering.
  • 2+ years of experience building large-scale distributed data processing systems.
  • Experience supporting production-grade analytics and ML platforms.


Core Skills (Must Have)

  • Apache Spark: Large-scale data processing, performance tuning, batch and streaming pipelines.
  • Apache Kafka: Event streaming, real-time data processing, and messaging architectures.
  • Snowflake: Data warehousing, data modeling, ELT, performance optimization, and security.
  • AWS / Azure: Experience with cloud-native data platforms and services such as:
  • AWS: S3, Kinesis, DynamoDB, RDS, Glue, EMR, Redshift
  • Azure: ADLS, ADF, Event Hubs, Synapse, Databricks, Azure SQL
  • Strong programming skills in Python, Scala, or Java.

Preferred: Experience in Fraud Analytics, data lakes, ML pipelines, and modern data platform architectures.

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See also

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