Data Engineer

USEReady Inc.

Bengaluru

Hybrid

INR 1,500,000 - 2,200,000

Full time

14 days+
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Job summary

USEReady Inc. in Bengaluru is seeking an experienced Data Engineer to design end-to-end ELT pipelines, migrate SQL data into Snowflake, and orchestrate bulk file transfers into Azure Data Lake Storage (ADLS).

You will build scalable pipelines, tune SQL queries, ensure data quality, and collaborate with engineering teams to meet security and governance requirements.

Qualifications

  • Proven, hands-on experience building, optimizing, and monitoring production ELT/ETL pipelines and data workflows.
  • Strong proficiency in SQL (writing complex queries, performance tuning, indexing) for extracting and validating large datasets across relational engines.
  • Snowflake: loading and modeling data using staging, COPY commands, or bulk loading utilities.
  • Azure Cloud Storage: experience with ADLS Gen2, Blob Storage, and file transfer/ingestion patterns.
  • File Processing: experience with bulk file ingestion formats (CSV, Parquet, JSON) and file movement tooling.
  • Agile Execution: ability to deliver rapid, high-quality results within structured timelines.

Responsibilities

  • Design, build, and maintain scalable ELT/ETL pipelines and data workflows for ingestion and transformation.
  • Execute structured data extraction, movement, and landing from SQL databases into Snowflake staging and core layers.
  • Build, execute, and monitor file movement tasks to transfer files into ADLS.
  • Write and tune high-performance SQL queries for data modeling, validation, and staging transformations.
  • Conduct data reconciliation and completeness checks to ensure zero loss across pipelines during migration.
  • Collaborate with Lead Data Integration Expert and client teams to align with security and governance protocols.

Skills

ELT Pipelines
SQL & Relational DBs
Snowflake
Azure Data Lake Storage
File Processing
Agile Execution

Tools

Airflow
dbt
Azure Data Factory
Python

Job description

Description

Primary Focus: SQL-to-Snowflake Data Transfer, ELT Pipelines & File-to-ADLS Ingestion

Role Overview

We are seeking an experienced Data Engineer to support a high-priority data integration and cloud enablement initiative. The primary focus of this role is designing and executing end-to-end ELT pipelines and data transfer workflows—migrating structured data from SQL sources into Snowflake and orchestrating bulk file transfers into Azure Data Lake Storage (ADLS).

Responsibilities
  • Design, build, and maintain scalable ELT/ETL pipelines and data workflows for ingestion and transformation.

  • Execute structured data extraction, movement, and landing from relational SQL databases directly into Snowflake staging and core layers.

  • Build, execute, and monitor file movement tasks to efficiently transfer flat files, logs, or unstructured formats into Azure Data Lake Storage (ADLS).

  • Write and tune high-performance SQL queries for data modeling, validation, data verification, and staging transformations.

  • Conduct data reconciliation and completeness checks to ensure zero loss across data pipelines during bulk migration.

  • Collaborate closely with the Lead Data Integration Expert and client engineering teams to align with platform connectivity, security, and governance protocols.

Required Skills
  • ELT / Data Pipelines: Proven, hands-on experience building, optimizing, and monitoring production ELT/ETL pipelines and data workflows.

  • SQL & Relational Databases: Strong proficiency in SQL (writing complex queries, performance tuning, indexing) for extracting and validating large datasets across relational engines.

  • Snowflake: Hands-on experience loading and modeling data in Snowflake using staging strategies, COPY commands, or bulk loading utilities.

  • Azure Cloud Storage: Solid background working with Azure Data Lake Storage (ADLS Gen2), Blob Storage, and associated file transfer/ingestion patterns.

  • File Processing: Practical experience with bulk file ingestion formats (CSV, Parquet, JSON) and file movement tooling.

  • Agile Execution: Ability to deliver rapid, high-quality results within structured project timelines.

Preferred Skills
  • Experience with orchestration and transformation tools (e.g., Airflow, dbt, Azure Data Factory, or Python-driven pipeline movers).

  • Familiarity with enterprise or industrial data integration platforms and SAP.

  • Version control using Git.

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