Data Engineer 11

Posted 12 Hours Ago
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Pune, Mahārāshtra, IND
In-Office
Entry level
Automotive
The Role
Develops and maintains enterprise data products, including scalable data pipelines, ETL/ELT processes, transformations, curated datasets, and distributed cloud-based storage solutions. Implements data quality monitoring, governance, metadata, lineage, access, and retention practices. Collaborates with product, engineering, analytics, and business stakeholders to deliver reliable, reusable, and AI-ready data products. Supports data modeling, testing, troubleshooting, documentation, and Agile development.
Summary Generated by Built In

Job Summary:

Supports, develops and maintains a data and analytics platform. Effectively and efficiently process, store and make data available to analysts and other consumers. Works with the Business and IT teams to understand the requirements to best leverage the technologies to enable agile data delivery at scale.


Key Responsibilities:

Implements and automates deployment of our distributed system for ingesting and transforming data from various types of sources (relational, event-based, unstructured). Implements methods to continuously monitor and troubleshoot data quality and data integrity issues. Implements data governance processes and methods for managing metadata, access, retention to data for internal and external users. Develops reliable, efficient, scalable and quality data pipelines with monitoring and alert mechanisms that combine a variety of sources using ETL/ELT tools or scripting languages. Develops physical data models and implements data storage architectures as per design guidelines. Analyzes complex data elements and systems, data flow, dependencies, and relationships in order to contribute to conceptual physical and logical data models. Participates in testing and troubleshooting of data pipelines. Develops and operates large scale data storage and processing solutions using different distributed and cloud based platforms for storing data (e.g. Data Lakes, Hadoop, Hbase, Cassandra, MongoDB, Accumulo, DynamoDB, others). Uses agile development technologies, such as DevOps, Scrum, Kanban and continuous improvement cycle, for data driven application.

Responsibilities

Competencies: 
System Requirements Engineering  - Uses appropriate methods and tools to translate stakeholder needs into verifiable requirements to which designs are developed; establishes acceptance criteria for the system of interest through analysis, allocation and negotiation; tracks the status of requirements throughout the system lifecycle; assesses the impact of changes to system requirements on project scope, schedule, and resources; creates and maintains information linkages to related artifacts.
Collaborates - Building partnerships and working collaboratively with others to meet shared objectives.
Communicates effectively - Developing and delivering multi-mode communications that convey a clear understanding of the unique needs of different audiences.
Customer focus - Building strong customer relationships and delivering customer-centric solutions.
Decision quality - Making good and timely decisions that keep the organization moving forward.
Data Extraction - Performs data extract-transform-load (ETL) activities from variety of sources and transforms them for consumption by various downstream applications and users using appropriate tools and technologies.
Programming - Creates, writes and tests computer code, test scripts, and build scripts using algorithmic analysis and design, industry standards and tools, version control, and build and test automation to meet business, technical, security, governance and compliance requirements.
Quality Assurance Metrics - Applies the science of measurement to assess whether a solution meets its intended outcomes using the IT Operating Model (ITOM), including the SDLC standards, tools, metrics and key performance indicators, to deliver a quality product.
Solution Documentation - Documents information and solution based on knowledge gained as part of product development activities; communicates to stakeholders with the goal of enabling improved productivity and effective knowledge transfer to others who were not originally part of the initial learning.
Solution Validation Testing - Validates a configuration item change or solution using the Function's defined best practices, including the Systems Development Life Cycle (SDLC) standards, tools and metrics, to ensure that it works as designed and meets customer requirements.
Data Quality - Identifies, understands and corrects flaws in data that supports effective information governance across operational business processes and decision making.
Problem Solving - Solves problems and may mentor others on effective problem solving by using a systematic analysis process by leveraging industry standard methodologies to create problem traceability and protect the customer; determines the assignable cause; implements robust, data-based solutions; identifies the systemic root causes and ensures actions to prevent problem reoccurrence are implemented.
Values differences - Recognizing the value that different perspectives and cultures bring to an organization. 
Education, Licenses, Certifications: 
College, university, or equivalent degree in relevant technical discipline, or relevant equivalent experience required. This position may require licensing for compliance with export controls or sanctions regulations. 
Experience: 
Relevant experience preferred such as working in a temporary student employment, intern, co-op, or other extracurricular team activities.
Knowledge of the latest technologies in data engineering is highly preferred and includes:
- Exposure to Big Data open source
- SPARK, Scala/Java, Map-Reduce, Hive, Hbase, and Kafka or equivalent college coursework
- SQL query language
- Clustered compute cloud-based implementation experience
- Familiarity developing applications requiring large file movement for a Cloud-based environment
- Exposure to Agile software development
- Exposure to building analytical solutions
- Exposure to IoT technology

Qualifications

Core Responsibilities Unique to the Role

1)  Develop and maintain enterprise data products by building data pipelines, data transformations, and curated datasets that support reporting, analytics, automation, and GenAI use cases across Supply Chain, Quality, Finance, Product Lifecycle, and other Enterprise Products domains.
2) Apply Data-as-a-Product principles to create reusable, discoverable, and governed data assets with appropriate metadata, lineage, and quality controls, enabling self-service consumption and consistent business outcomes across multiple consumers.
3) 
Collaborate with Product Managers, Data Engineers, Data Scientists, and Solution Engineers to support delivery of AI-ready data products by ensuring data is reliable, well-structured, and optimized for analytics, machine learning, and GenAI applications.

Required Skills, Education, or Experience

1) Experience developing and supporting data integration, ETL/ELT processes, data pipelines, and data transformations using modern data platforms and cloud-based technologies.
2) Working knowledge of data modeling, SQL, data quality practices, metadata management, and data governance principles supporting enterprise-scale data products.
3) Ability to translate business and product requirements into efficient technical solutions while considering scalability, performance, maintainability, and reusability.
4) Experience working in Agile, cross-functional teams and collaborating effectively with product, engineering, analytics, and business stakeholders.
5) Bachelor's degree in Computer Science, Information Technology, Engineering, Data Analytics, or equivalent practical experience.

Preferred (Nice to Have) Skills, Education, or Experience

1) Experience working within a Data-as-a-Product operating model, including exposure to data catalogs, lineage, data quality frameworks, and certified data products.
2) Exposure to AI/ML or GenAI initiatives, including preparation of AI-ready datasets, semantic models, knowledge assets, or data structures supporting intelligent business solutions.

About UsCummins is an equal opportunity employer. Our policy is to provide equal employment opportunities to all qualified persons without regard to race, sex, color, disability, national origin, age, religion, union affiliation, sexual orientation, veteran status, citizenship, gender identity, or other status protected by law.

Skills Required

  • College, university, or equivalent degree in a relevant technical discipline, or relevant equivalent experience
  • Experience developing and supporting data integration, ETL/ELT processes, data pipelines, and data transformations using modern data platforms and cloud-based technologies
  • Working knowledge of data modeling, SQL, data quality practices, metadata management, and data governance principles
  • Ability to translate business and product requirements into scalable, performant, maintainable, and reusable technical solutions
  • Experience working in Agile, cross-functional teams with product, engineering, analytics, and business stakeholders
  • Bachelor's degree in Computer Science, Information Technology, Engineering, Data Analytics, or equivalent practical experience
  • Experience with a Data-as-a-Product operating model, data catalogs, lineage, data quality frameworks, or certified data products
  • Exposure to AI/ML or GenAI initiatives, including preparation of AI-ready datasets, semantic models, knowledge assets, or supporting data structures
  • Exposure to Big Data open source technologies, including Spark, Scala or Java, MapReduce, Hive, HBase, Kafka, or equivalent coursework
  • SQL query language knowledge
  • Clustered compute cloud-based implementation experience
  • Familiarity developing applications requiring large file movement in cloud-based environments
  • Exposure to Agile software development, analytical solutions, and IoT technology

Cummins Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Cummins and has not been reviewed or approved by Cummins.

  • Retirement Support A 401(k) with company contribution/match and both defined contribution and defined benefit pension plans are offered, alongside profit sharing and an employee stock purchase plan. This mix supports long-term savings and financial security.
  • Healthcare Strength Multiple medical plan options (HSA, HSA Plus, PPO) with dental, vision, life and long-term disability coverage are provided, along with telehealth, mental-health support, and wellness tools. In-network protections and HSA/HSA Plus structures are described to help manage costs.
  • Parental & Family Support Paid maternity and paternity leave, family medical leave, and adoption assistance are offered. Reduced or flexible hours and unpaid extended leave options further support caregiving needs.

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The Company
HQ: Columbus, IN
35,251 Employees
Year Founded: 1919

What We Do

At Cummins, we empower everyone to grow their careers through meaningful work, building inclusive and equitable teams, coaching, development and opportunities to make a difference. Across our entire organization, you'll find engineers, developers, and technicians who are innovating, designing, testing, and building. You'll also find accountants, marketers, as well as manufacturing, quality and supply chain specialists who are working with technology that's just as innovative and advanced.

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