Senior Engineer, Data Engineering (Hyderabad)

Senior Engineer, Data Engineering (Hyderabad)

04 Sep
|
Prudent Technologies and Consulting
|
Hyderabad

04 Sep

Prudent Technologies and Consulting

Hyderabad

Shift Timings: Design, build, and maintain robust ETL/ELT pipelines feeding a Snowflake-based data platform
Build and manage integrations using SnapLogic to connect source systems, APIs, and downstream consumers
Develop and maintain data models and transformations in dbt, including tests, documentation, and CI/CD-based deployment
Design dimensional and/or medallion-style (Bronze/Silver/Gold) data architectures that balance performance, cost, and usability
Use AI-assisted tools to accelerate development — generating boilerplate code, drafting SQL/dbt models, writing documentation, debugging pipeline failures, and summarising data quality issues
Partner with data quality, governance, and analytics teams to ensure data is well-modelled, well-documented, and trustworthy
Optimise Snowflake warehouse performance and cost (query tuning, clustering, resource monitors)
Mentor junior engineers, including on how to use AI tools responsibly and effectively (e.g., reviewing AI-generated code, not blindly trusting output)
Contribute to internal standards for prompt patterns, reusable AI workflows, or tooling that make the whole team faster

Snowflake — strong hands-on experience with data modelling, performance tuning, security/access, and cost management




SnapLogic — building and maintaining integration pipelines and connecting heterogeneous source systems
dbt — writing modular, tested transformations; Data Modelling — dimensional modelling, medallion/layered architectures, normalisation vs. Solid SQL and at least one scripting language (Python preferred)
AI-AUGMENTED WORKING STYLE (WHAT WE'RE LOOKING FOR)

Regularly uses AI coding assistants (Copilot, Claude Code, Cursor, ChatGPT, etc.) Comfortable prompting AI tools for tasks like generating dbt models, writing test cases, summarising data quality issues, or drafting documentation
Applies good judgement about when AI output needs review vs. can be trusted — treats AI as a fast first draft, not a final answer
Curious about applying AI to structural problems: pipeline debugging, anomaly detection, metadata generation, code review support
Comfortable working in an environment where AI-usage practices are still evolving, and contributes ideas to shape them

Experience with data quality tooling (SODA, Collibra, or similar)
Exposure to cloud platforms (Azure, AWS, or GCP)
Experience in a regulated or enterprise-scale data environment
Prior experience mentoring or leading a small pod of engineers

EXPERIENCE

~8+ years in data engineering, with at least 4+ years focused on Snowflake and up-to-date ELT tooling (dbt)
~

📌 Senior Engineer, Data Engineering (Hyderabad)
🏢 Prudent Technologies and Consulting
📍 Hyderabad

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