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Data Engineer - ETL/Generative AI

HyreSnap
8 - 12 Years
Multiple Locations

Posted on: 22/04/2026

Job Description

Description :

Role : GenAI Data ETL Engineer

Experience : 8 - 12 Years

Location : Gurgaon / Hyderabad

Function : Software Engineering Big Data / DWH / ETL

Role Overview :

We are seeking a GenAI Data ETL Engineer to design, build, and manage data pipelines that power LLM-based applications, copilots, and intelligent automation.

This role sits at the intersection of data engineering and generative AI, focusing on transforming complex enterprise data into high-quality inputs for retrieval-augmented generation (RAG) and advanced analytics. You will collaborate closely with GenAI engineers, platform teams, and business stakeholders to deliver scalable, secure, and future-ready data solutions.

Key Responsibilities :

1. GenAI / RAG Data Pipeline Development :


- Design and maintain ETL/ELT pipelines for structured and unstructured data sources (databases, documents, logs, APIs, SaaS tools)

- Transform data using techniques like chunking, enrichment, normalization, deduplication, and PII redaction

- Build semantic data models aligned with LLM consumption (entities, relationships, knowledge domains)

- Optimize pipelines for performance, scalability, and cost (CDC, partitioning, caching, incremental loads)

- Implement data quality checks tailored to GenAI use cases (freshness, coverage, retrieval accuracy)

2. LLM & Integration Engineering :


- Develop integrations across enterprise systems (CRM, ERP, ITSM, knowledge bases, collaboration tools)

- Enable seamless data flow into LLM orchestration frameworks (RAG pipelines, agents, workflows)

- Build logging and feedback systems for prompts, responses, and retrieval traces

- Ensure data security, governance, and compliance (access control, masking, auditability)

- Define APIs, schemas, and SLAs for reliable GenAI data consumption

3. Operations, Monitoring & Documentation :


- Implement orchestration and scheduling (Airflow, Prefect, Dagster, cloud-native tools)

- Establish observability for pipelines and retrieval systems (health, freshness, coverage)

- Troubleshoot and resolve pipeline/data issues with root-cause analysis

- Maintain documentation for data lineage, schemas, and workflows

- Collaborate with governance teams for metadata, standards, and compliance

Required Skills & Qualifications :

- Bachelors degree in Computer Science, Information Systems, or related field

- 5+ years of experience in data engineering, ETL/ELT, or data integration

- Strong SQL skills (joins, window functions, performance optimization)

- Hands-on experience with data pipeline frameworks (dbt, Airflow, Prefect, Dagster, etc.)

- Experience with cloud data platforms (Snowflake, BigQuery, Redshift, Synapse, etc.)

- Proficiency in Python (preferred) or Java/Scala for data workflows

- Experience working with APIs, JSON, CSV, and integration patterns

- Solid understanding of data modeling (relational, denormalization, CDC, event-driven ingestion)

- Familiarity with Git and standard software development practices

- Exposure to GenAI/LLM concepts through projects or production use cases

Preferred Skills :

- Experience with RAG, semantic search, and document intelligence

- Hands-on experience with vector databases (Pinecone, Weaviate, pgvector, Elasticsearch, etc.)

- Experience with orchestration tools (Airflow, Prefect, Dagster, Azure Data Factory, AWS Glue)

- Knowledge of streaming platforms (Kafka, Kinesis, Pub/Sub, EventBridge)

- Experience with data quality and observability tools (Great Expectations, Monte Carlo, Soda)

- Familiarity with cloud platforms (AWS, Azure, GCP) and their data/AI services

- Understanding of data security and compliance (encryption, access control, PII handling)

Nice to Have :

- Experience collaborating with ML/GenAI teams (feature pipelines, evaluation datasets, MLOps)

- Exposure to BI/analytics tools (Power BI, Tableau, Looker)

- Experience with data catalogs, lineage tools, or knowledge graphs


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