Software Engr II

Reposted 4 Hours Ago
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Bengaluru, Bengaluru Urban, Karnataka, IND
In-Office
Mid level
Aerospace
The Role
Design, build, and scale end-to-end AI/ML platform services from IoT streaming and knowledge graphs to LLM orchestration and edge model deployment. Develop FastAPI Python inference APIs, CI/CD for edge deployments, ML orchestration (LangGraph/MLflow), observability, and cloud-native data pipelines for production edge AI.
Summary Generated by Built In

As a Full Stack AI Platform Engineer here at Honeywell, you will design, build, and scale AI systems end-to-end — from high-throughput IoT streaming pipelines and knowledge graph infrastructure, through LLM orchestration and RAG services, to the React-based interfaces that surface autonomous insights to plant engineers, facility managers, and OT security analysts.

We are seeking a Full Stack AI Platform Engineer to join our Data Engineering, AI & ML Platform team. This role is central to designing, building, and scaling the enterprise AI/ML platform that powers intelligent automation across a global portfolio.

You will work at the intersection of data engineering, machine learning operations, and edge AI — building production-grade infrastructure that processes billions of IoT events from building management systems, deploys models to edge devices, and enables AI-driven applications including predictive diagnostics, energy monitoring, and RAG-based knowledge systems.

This is a high-impact individual contributor role for someone who thrives in ambiguity, ships production systems, and can operate across the full stack from cloud-native platforms to edge GPU hardware.

Responsibilities

AI/ML Platform Engineering

• Develop high-performance, production-ready Python APIs using FastAPI to serve as the primary interface for on-device model inference

• Design, build, and maintain enterprise AI/ML platform services on multi-cloud infrastructure including model deployment, serving and experiment tracking.

• Build robust CI/CD stacks to automate the testing of inference logic and the deployment of API services to edge devices.

• Implement ML orchestration workflows using LangGraph, MLflow, and custom orchestration layers for multi-agent AI systems.

• Develop and integrate AI workloads using ML-Ops and tracing tools like LangSmith.

• Design and implement automated data processing pipelines within FastAPI to handle real-time sensor or image inputs for the model.

• Bridge the gap between research and deployment by converting code from experimental into modular, maintainable Python packages.

Edge AI & Inference

• Ability to integrate and run pre-built AI models on local hardware using standard industry runtimes.

• Skilled at building the software logic required to process data inputs and handle model outputs efficiently.

• Expert at developing Python-based services and automating their deployment to devices via standardized pipelines.

• Capable of monitoring and optimizing software to run reliably within strict memory and hardware limitations.

• Experience deploying containerized models from Azure to edge devices using Azure IoT Edge or managed online endpoints

Data & Knowledge Engineering

• Experience building pipelines to structure, clean, and store data for model training or real-time retrieval (RAG) on edge devices

• Ability to convert experimental data processing logic from notebooks into production-ready Python modules.

• Design automated workflows to collect, label, and manage datasets, ensuring high-quality data is available for continuous model improvement.


Production Operations & Reliability

• Own platform reliability for AI services serving multiple business units.

• Implement observability, monitoring, and alerting for ML pipelines and inference services.

• Drive cost optimization across data platform workloads, cloud compute, and storage infrastructure.

• Proficient in using Azure Machine Learning Studio to manage the full lifecycle of models, including registration, versioning, and monitoring.

Qualifications

YOU MUST HAVE

• Bachelor's degree from an accredited institution in a technical discipline such as science, technology, engineering, mathematics.

• 3 plus years of experience in software engineering, data engineering, or ML platform engineering.

• Strong proficiency in Python and at least one systems language (Python, Go, Rust, C++).

• Deep hands-on experience with cloud-native data platforms (Databricks, BigQuery, Azure Data Lake, Kubernetes).

• Production experience building and deploying ML/AI pipelines including model serving, feature engineering, and experiment tracking.

• Experience with LLM application frameworks such as LangChain, LangGraph, and Langsmith or equivalent agentic AI orchestration tools.

• Experience with edge AI deployment on NVIDIA Jetson or similar embedded GPU platforms.

• Experience with knowledge graphs, ontology engineering, or semantic web technologies.

WE VALUE

• Advanced degree in Computer Science, Artificial Intelligence, or related field.

• Background in building management systems, HVAC, energy management, or industrial IoT domains.

• Strong leadership and management skills.

• Experience working in an agile development environment.

• Proven ability to drive successful cloud development projects and initiatives.

• Ability to work in a fast-paced and dynamic environment.

• Attention to detail and excellent problem-solving capability.

About UsHoneywell 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.

Skills Required

  • Bachelor's degree in a technical discipline (STEM)
  • 3+ years of experience in software engineering, data engineering, or ML platform engineering
  • Strong proficiency in Python
  • Proficiency in at least one systems language (Go, Rust, or C++)
  • Experience with FastAPI for production inference APIs
  • Deep hands-on experience with cloud-native data platforms (Databricks, BigQuery, Azure Data Lake) and Kubernetes
  • Production experience building and deploying ML/AI pipelines including model serving, feature engineering, and experiment tracking
  • Experience with LLM application frameworks / agent orchestration (LangChain, LangGraph, LangSmith) or equivalents
  • Experience with edge AI deployment on NVIDIA Jetson or similar embedded GPU platforms
  • Experience with knowledge graphs, ontology engineering, or semantic web technologies
  • Proficiency with Azure Machine Learning Studio for model lifecycle management
  • Experience deploying containerized models to edge devices (Azure IoT Edge or managed endpoints)
  • Experience building CI/CD pipelines to automate testing and deployment of inference services
  • Experience with observability, monitoring, and alerting for ML pipelines and inference services
  • Advanced degree in Computer Science, AI, or related field
  • Background in building management systems, HVAC, energy management, or industrial IoT
  • Leadership, agile development experience, and ability to drive cloud development projects
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The Company
Mississauga, Ontario
10,000 Employees
Year Founded: 1914

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