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Senior Data Specialist

Bangalore, Karnataka

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Employment
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Apply at Caterpillar

What you’ll work on

Full posting
  • Design, develop, and maintain scalable data pipelines on AWS (batch and near‑real‑time).

  • Implement automated data quality checks, alerts, and monitoring for pipeline failures or data issues.

  • Own data quality validation across pipelines, including

From the employer’s posting
Key Responsibilities Design, develop, and maintain scalable data pipelines on AWS (batch and near‑real‑time). Own data quality validation across pipelines, including
Schema validation and anomaly detection Implement automated data quality checks, alerts, and monitoring for pipeline failures or data issues. Collaborate with search and platform teams to ensure high‑quality indexed data for Coveo sources.
Design, develop, and maintain scalable data pipelines on AWS (batch and near‑real‑time). Own data quality validation across pipelines, including Data completeness, freshness, consistency, and accuracy checks

What you’ll bring

All qualifications

Core experience

  • Strong experience as a Data Engineer working on AWS.
  • Ability to work cross‑functionally with data, search, and platform teams.
  • Proficiency in Python (and/or PySpark) for data engineering and validation logic.
  • Strong understanding of data quality concepts, frameworks, and best practices.
  • Experience integrating data from multiple sources (APIs, databases, files).
  • Solid knowledge of ETL/ELT patterns and data modeling fundamentals.
Qualification wording
Strong experience as a Data Engineer working on AWS.
Ability to work cross‑functionally with data, search, and platform teams.
Proficiency in Python (and/or PySpark) for data engineering and validation logic.
Strong understanding of data quality concepts, frameworks, and best practices.
Experience integrating data from multiple sources (APIs, databases, files).
Solid knowledge of ETL/ELT patterns and data modeling fundamentals.

Tools in this posting

  • Python
  • AWS
  • S3
  • PySpark
  • Snowflake
Source — Tool mentions in context
AWS Glue,BedRock,Lambda, Step Functions, S3, SNS/SQS (or similar) Proficiency in Python (and/or PySpark) for data engineering and validation logic. Strong understanding of data quality concepts, frameworks, and best practices.
When you join Caterpillar, you're joining a global team who cares not just about the work we do – but also about each other. We are the makers, problem solvers, and future world builders who are creating stronger, more sustainable communities. We don't just talk about progress and innovation here – we make it happen, with our customers, where we work and live. Together, we are building a better world, so we can all enjoy living in it. AWS Data Engineer who will design, build, and maintain robust data pipelines and connectors across AWS and Coveo. This role will have a strong focus on data quality, reliability, and validation, ensuring that data ingested into Coveo and downstream systems is accurate, complete, and production‑ready. The engineer will work closely with search, data, and platform teams to support enterprise‑scale ingestion pipelines, improve data quality frameworks, and enable high‑quality search and content experiences.
Key Responsibilities Design, develop, and maintain scalable data pipelines on AWS (batch and near‑real‑time). Own data quality validation across pipelines, including
Required Qualifications Strong experience as a Data Engineer working on AWS. Hands‑on experience building data pipelines using services such as:
Hands‑on experience building data pipelines using services such as: AWS Glue,BedRock,Lambda, Step Functions, S3, SNS/SQS (or similar) Proficiency in Python (and/or PySpark) for data engineering and validation logic.
Exposure to data quality frameworks or rule‑based validation approaches. Knowledge of Snowflake. Experience working in large enterprise or multi‑team environments.

Job description

View original posting ↗

Career Area:

Technology, Digital and Data

Job Description:

Your Work Shapes the World at Caterpillar Inc.

When you join Caterpillar, you're joining a global team who cares not just about the work we do – but also about each other.  We are the makers, problem solvers, and future world builders who are creating stronger, more sustainable communities. We don't just talk about progress and innovation here – we make it happen, with our customers, where we work and live. Together, we are building a better world, so we can all enjoy living in it.

AWS Data Engineer who will design, build, and maintain robust data pipelines and connectors across AWS and Coveo. This role will have a strong focus on data quality, reliability, and validation, ensuring that data ingested into Coveo and downstream systems is accurate, complete, and production‑ready.

The engineer will work closely with search, data, and platform teams to support enterprise‑scale ingestion pipelines, improve data quality frameworks, and enable high‑quality search and content experiences.

Key Responsibilities

   Design, develop, and maintain scalable data pipelines on AWS (batch and near‑real‑time).

   Own data quality validation across pipelines, including

   Data completeness, freshness, consistency, and accuracy checks

   Schema validation and anomaly detection

   Implement automated data quality checks, alerts, and monitoring for pipeline failures or data issues.

   Collaborate with search and platform teams to ensure high‑quality indexed data for Coveo sources.

   Contribute to CI/CD pipelines and follow enterprise SDLC and security standards.

   Produce clear documentation for pipelines, data contracts, and quality rules.

  Perform in-depth analysis of search-indexed datasets to identify data quality issues to improve relevance, accuracy, and overall search performance.

Required Qualifications

  Strong experience as a Data Engineer working on AWS.

  Hands‑on experience building data pipelines using services such as:

  AWS Glue,BedRock,Lambda, Step Functions, S3, SNS/SQS (or similar)

  Proficiency in Python (and/or PySpark) for data engineering and validation logic.

  Strong understanding of data quality concepts, frameworks, and best practices.

  Experience integrating data from multiple sources (APIs, databases, files).

  Solid knowledge of ETL/ELT patterns and data modeling fundamentals.

  Experience with logging, monitoring, and alerting for data pipelines.

  Familiarity with CI/CD practices and version control (Git).

Preferred / Nice‑to‑Have Skills

   Experience working with Coveo (sources, connectors, indexing, ingestion pipelines).

   Prior experience supporting search platforms or content indexing pipelines.

   Exposure to data quality frameworks or rule‑based validation approaches.

   Knowledge of Snowflake.

   Experience working in large enterprise or multi‑team environments.

Soft Skills

   Strong problem‑solving and debugging skills.

   Ability to work cross‑functionally with data, search, and platform teams.

   Clear communication of data issues, risks, and remediation plans.

   High ownership mindset with attention to detail, especially around data correctness.

 

Posting Dates:

October 6, 2026 - October 12, 2026

Caterpillar is an Equal Opportunity Employer.  Qualified applicants of any age are encouraged to apply

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Source & posting history

View original posting ↗

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Pay

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Location & working pattern

Bangalore, Karnataka

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Status in our records
Active
First seen by us
Jun 4, 2026
Recorded sightings
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Last seen by us
Oct 8, 2026

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