Senior Manager - Data Engineering

McCormick & Company

Gurugram District

On-site

INR 3,000,000 - 6,000,000

Full time

13 days ago
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Job summary

McCormick & Company is seeking a Data Engineering Manager to lead a team building scalable data products and pipelines across the organization in Gurugram. You will collaborate with data product managers, data scientists, and analysts to translate business needs into robust data models and automated data flows.

The role emphasizes data quality, security, and performance, with hands-on work on ELT pipelines using Azure Synapse, PySpark, Databricks, and SQL.

Qualifications

  • 12+ years of data engineering experience.
  • Experience building scalable data pipelines and data products.
  • Strong knowledge of ELT/ETL, data modeling, and data quality.

Responsibilities

  • Plan and design end-to-end data solutions with security and performance in mind.
  • Lead 8-10 data engineers; mentor and develop team; establish standards.
  • Develop ELT pipelines using Azure technologies and PySpark; ensure data quality.
  • Collaborate with Data Science and Analytics teams to optimize performance and cost.
  • Provide support to stakeholders for data-related issues and data enablement.

Skills

Leadership
Team management
Data product thinking
PySpark
SQL
Power BI
Azure Synapse
Automation

Education

Bachelor’s degree in Mathematics, Statistics, Computer Science, Data Analytics/Science, or related field
Masters in technical field or MBA a plus

Tools

Azure Synapse
PySpark
Databricks
SQL
Power BI
Azure Data Factory
Azure ML
Fabric
CI/CD (Azure DevOps)
APIs

Job description

As a Data Engineering Manager at McCormick, you will play a pivotal role in the build and delivery of data products from simple to complex and supporting McCormick business units with their data and analytics needs.

Your responsibilities will include leading a team that delivers and supports data for existing analytics solutions, tooling, and solutions, researching new features and implementing automations. You will support business users, Data Scientists and Data Analysts to convert business expectations into data products and data models usable by business to deliver AI, analysis, reporting, and data-driven recommendations to stakeholders and executives.

This role will be accountable for building and maintaining scalable data pipelines from source systems. The Data Engineering Manager will ensure the availability, reliability, and performance of data products by integrating raw data from various sources. Key responsibilities include data modeling, ETL (Extract, Transform, Load) development, and ensuring data quality and security. This role will be accountable for data coming in from 5+ source systems.

Key Responsibilities:
Plan and Design
  • Collaborate with data product managers to gather data product requirements.
  • Design end-to-end solutions including data security, data quality and performance requirements.
  • Prepare documentation and with data product managers to define the implementation plan.
Data Extraction, Load and Transformation
  • Implement ELT pipelines to efficiently ingest and transform data from a wide variety of data sources and deliver datasets that meet business requirements.
  • Ensure efficient and reliable data mapping to support business needs.
  • Deliver complete documentation and knowledge transfer sessions for the Team and business partners.
  • Maintain existing solutions, implement optimizations and enhancements, monitor data quality.
  • Develop and maintain scalable data pipelines leveraging Azure Synapse, PySpark, APIs, and SQL & performing advanced data cleaning, transformation, and manipulation to ensure high-quality, and reliable data flows.
Process Improvement, Performance and Cost optimization tuning
  • Collaborate with Data Science, Machine Learning and Business Analytics teams to optimize performance and cost effectiveness of their analytics solutions.
  • Identify and design internal process improvements, including automating manual processes, optimizing data delivery, and redesigning solutions for enhanced scalability. Work with Azure Analytics Product Owner to prioritize and schedule implementation.
  • Design and implement existing solution adjustments to improve performance and cost-effectiveness.
  • Suggest and introduce best practices for Data and AI engineering.
Issue Resolution and Support
  • Assist stakeholders with data-related technical issues and support their data needs. Work with the Analytics Operational Support team to investigate, troubleshoot, and resolve data errors / discrepancies.
  • Provide expert-level support and guidance to data teams across the Enterprise.
People Leadership & Capability Building
  • Lead, mentor, and develop a high-performing team of 8-10 data engineers.
  • Define technical standards, code review practices, and engineering excellence frameworks.
  • Build career paths, upskilling programs, and succession plans within data engineering.
  • Foster a culture of innovation, accountability, collaboration, and continuous learning.
  • Be accountable for building a winning data engineering team – driven by making data a core asset for McCormick.
Desired Candidate Profile:
  • Bachelor’s degree in Mathematics, Statistics, Computer Science, Data Analytics/Science, or related field; Masters in technical field or MBA a plus
  • Microsoft Certified: Azure Data Engineer (DP203+AZ305 or Microsoft Certified: Fabric Data Engineer Associate or related cloud technologies, Fabric IQ/databricks certifications a plus
  • 12+ years of data engineering experience.
  • Demonstrated ability coding in one or more languages (PySpark preferred).
  • Experience with data visualization software (Power BI preferred).
  • Experience with building data pipelines.
  • Experience with the following tooling: SQL, Fabric, Databricks, Synapse, Azure Data Factory, Azure ML, Azure DevOps (for CI/CD),
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