Lead Data Engineer

BioSpace

Chittoor

On-site

INR 1,800,000 - 2,400,000

Full time

4 days ago
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Job summary

USP's Digital product engineering team is seeking a Data Engineer with expertise in building robust data pipelines, managing large-scale data infrastructure, and enabling advanced analytics capabilities. This role is critical to supporting projects that align with our mission to protect patient safety and improve health globally.

We are looking for a professional who understands the value of clean, accessible data and who enjoys designing systems that empower data scientists, analysts, and

Qualifications

  • 7+ years of experience in big data technologies such as Python, PySpark, and SQL for processing structured, semi-structured, and unstructured data.

Responsibilities

  • Design scalable data collection, storage, and processing pipelines to support enterprise-wide data needs.
  • Implement data governance frameworks and data quality checks within data pipelines to ensure compliance and reliability.
  • Build and optimize data models and data marts to support self-service analytics and reporting tools such as Tableau, Looker, and Power BI
  • Partner with data scientists to operationalize models by integrating them into production-grade pipelines, ensuring scalability, performance, and maintainability.
  • Collaborate with cross-functional stakeholders to translate business requirements into scalable data solutions and prioritize data initiatives.
  • Provide technical leadership and architectural guidance for data platform design, ensuring alignment with enterprise standards and long-term data strategy.
  • Lead design reviews, code reviews, and data architecture discussions to ensure best practices, reusability, and high-quality deliverables.
  • Collaborate with platform, DevOps, and security teams to ensure secure, cost-effective, and scalable data infrastructure.
  • Influence data roadmap and strategy by identifying opportunities for data platform enhancement, automation, and cost optimization.

Skills

Python
PySpark
SQL
Data pipeline design
Data governance
Data modeling
Stakeholder communication

Education

Bachelor's degree in Engineering, Analytics, Computer Science, or related field

Tools

AWS Redshift
AWS S3
AWS Glue
AWS Lambda
EventBridge
PostgreSQL
Neo4j

Job description

Who is USP?

The U.S. Pharmacopeial Convention (USP) USP is an independent scientific organization that collaborates with the world's top experts in health and science to develop quality standards for medicines, dietary supplements, and food ingredients. USP's fundamental belief that

Description

The U.S. Pharmacopeial Convention (USP) USP is an independent scientific organization that collaborates with the world's top experts in health and science to develop quality standards for medicines, dietary supplements, and food ingredients. USP's fundamental belief that Equity = Excellence manifests in our core value of Passion for Quality through our more than 1,100 talented professionals across five global locations to deliver the mission to strengthen the supply of safe, quality medicines and supplements worldwide.

Brief Job Overview

The Digital product engineering team at USP is seeking a Data Engineer with expertise in building robust data pipelines, managing large-scale data infrastructure, and enabling advanced analytics capabilities. This role is critical to supporting projects that align with our mission to protect patient safety and improve the health of people around the world. We are looking for a professional who understands the value of clean, accessible, and well-organized data, and who enjoys designing systems that empower data scientists, analysts, and business stakeholders to derive actionable insights. The ideal candidate will be passionate about data architecture, cloud technologies, and scalable engineering solutions that drive innovation and impact.

How will YOU create impact here at USP?
  • Design and implement scalable data collection, storage, and processing pipelines to support enterprise-wide data needs.
  • Implement and maintain data governance frameworks and data quality checks within data pipelines to ensure compliance and reliability.
  • Build and optimize data models and data marts to support self-service analytics and reporting tools such as Tableau, Looker, and Power BI
  • Partner with data scientists to operationalize models by integrating them into production-grade pipelines, ensuring scalability, performance, and maintainability.
  • Collaborate with cross-functional stakeholders (business, product, analytics, and engineering teams) to translate business requirements into scalable data solutions and prioritize data initiatives.
  • Provide technical leadership and architectural guidance for data platform design, ensuring alignment with enterprise standards and long-term data strategy.
  • Lead design reviews, code reviews, and data architecture discussions to ensure best practices, reusability, and high-quality deliverables.
  • Collaborate with platform, DevOps, and security teams to ensure secure, cost-effective, and scalable data infrastructure.
  • Influence data roadmap and strategy by identifying opportunities for data platform enhancement, automation, and cost optimization.
Who USP is Looking For?

The Successful Candidate Will Have a Demonstrated Understanding Of Our Mission, Commitment To Excellence Through Inclusive And Equitable Behaviors And Practices, Ability To Quickly Build Credibility With Stakeholders, Along With The Following Competencies And Experience

Education

Bachelor’s degree in relevant field (e.g. Engineering, Analytics or Data Science, Computer Science, Statistics) or equivalent experience.

Experience
  • 7+ years of experience in big data technologies such as Python, PySpark, and SQL for processing structured, semi-structured, and unstructured data.
  • Strong experience with AWS data services including Redshift, S3, Glue, Lambda, EventBridge, Postgres, Neo4j (Azure/GCP equivalents such as ADLS, Synapse, ADF acceptable).
  • Experience in building batch, micro-batch, and streaming pipelines (real-time / near real-time) using Lambda/Kappa architectures.
  • Hands-on expertise in designing and delivering enterprise-scale data platforms, including data lakehouse, data warehouse, data lake, and data marts.
  • Strong understanding and hands-on implementation of data modeling techniques including - Data Vault 2.0, Dimensional Modeling, Knowledge Graphs, One Big Table (OBT) approaches (Certification in at least one area preferred)
  • Experience with medallion architecture and metadata-driven data pipeline frameworks.
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