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Sr Advanced Data Engineer

Honeywell
Posted 2 months ago, valid for 16 days
Location

Atlanta, GA 30334, US

Salary

$120,000 - $144,000 per year

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Contract type

Full Time

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Sonic Summary

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  • The job requires a strong background in data engineering and AI pipeline development, focusing on scalable architectures for high-volume IoT data.
  • Candidates should have at least 5 years of experience in data engineering, with expertise in building data pipelines and optimizing data processing for AI workloads.
  • Responsibilities include implementing DataOps practices, creating automated testing frameworks, and collaborating with ML engineers and data scientists.
  • The position offers a competitive salary of $120,000 per year, reflecting the technical leadership and mentorship aspects of the role.
  • Honeywell seeks innovative individuals who can drive projects in an agile environment, contributing to solutions in automation and sustainability.

 

KEY RESPONSIBILITIES 

Data Engineering & AI Pipeline Development:

  • Design and implement scalable data architectures to process high-volume IoT sensor data and telemetry streams, ensuring reliable data capture and processing for AI/ML workloads
  • Build and maintain data pipelines for AI product lifecycle, including training data preparation, feature engineering, and inference data flows
  • Develop and optimize RAG (Retrieval Augmented Generation) systems, including vector databases, embedding pipelines, and efficient retrieval mechanisms
  • Lead the architecture and development of scalable data platforms on Databricks 
  • Drive the integration of GenAI capabilities into data workflows and applications 
  • Optimize data processing for performance, cost, and reliability at scale
  • Create robust data integration solutions that combine industrial IoT data streams with enterprise data sources for AI model training and inference

 

DataOps:

  • Implement DataOps practices to ensure continuous integration and delivery of data pipelines powering AI solutions
  • Design and maintain automated testing frameworks for data quality, data drift detection, and AI model performance monitoring
  • Create self-service data assets enabling data scientists and ML engineers to access and utilize data efficiently
  • Design and maintain automated documentation for data lineage and AI model provenance

 

Collaboration & Innovation:

  • Partner with ML engineers and data scientists to implement efficient data workflows for model training, fine-tuning, and deployment
  • Mentor team members and provide technical leadership on complex data engineering challenges 
  • Establish data engineering best practices, including modular code design and reusable frameworks 
  • Drive projects to completion while working in an agile environment with evolving requirements in the rapidly changing AI landscape

Honeywell helps organizations solve the world's most complex challenges in automation, the future of aviation and energy transition. As a trusted partner, we provide actionable solutions and innovation through our Aerospace Technologies, Building Automation, Energy and Sustainability Solutions, and Industrial Automation business segments – powered by our Honeywell Forge software – that help make the world smarter, safer and more sustainable.



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