Sr Advanced Software Engr
Honeywell- Location
- Pune, Maharashtra, India
- Workplace
- —
- Employment
- Full Time
- Salary
- —
Posted 23d ago
As a Senior Advanced AI Engineer at Honeywell, you will be a driving force in designing, developing, and deploying end-to-end cloud and AI/ML solutions aimed at bringing autonomous capabilities to Honeywell products over the next decade. You will operate as a hands-on technical leader, working on everything from data pipelines to model optimization and drift detection, while mentoring junior team members to build a truly full-stack AI/ML practice.
Key Responsibilities
- Design and implement high-impact AI/ML models and workflows, ability to work on Cloud architectures and build solutions, ensuring scalability and reliability on cloud platforms such as Databricks, VertexAI, etc.
- Collaborate with cross-functional teams (Data Engineering, ML Engineering, DevOps) to create holistic MLOps pipelines, leveraging frameworks such as MLflow and Kubeflow.
- Conduct thorough reviews of ML models for performance, bias, and drift, proposing corrective actions.
- Integrate AI (including TimeSeries, Computer Vision, NLP, GenAI/RAG/Agentic AI) solutions into existing Honeywell products, maintaining rigorous code quality standards.
- Mentor junior engineers, promoting best practices in model development and deployment.
Qualifications & Experience
- Bachelor’s or Master’s degree in Computer Science, AI, or related technical field.
- 6+ years of hands-on experience developing and deploying ML models in production.
- Proven track record in advanced machine learning frameworks (e.g., TensorFlow, PyTorch).
- Demonstrated expertise in MLOps tools and best practices (CI/CD, containerization, orchestration).
- Strong Python skills, with exposure to additional languages (Scala, Java), considered a plus.
Preferred Competencies
- Full-stack AI/ML experience (data ingestion through model deployment and maintenance).
- Strong analytical mindset with a bias towards skeptical, data-driven decision-making.
- Familiarity with cloud platforms (AWS, Azure, or GCP) for large-scale training and deployment.
- Ability to communicate technical concepts to both experts and laypersons.
- Knowledge of Agile or similar software development methodologies.
Skills
- Databricks
- Machine Learning
- MLOps
- MLflow
- Kubeflow
- Computer Vision
- NLP
- Generative AI
- Retrieval-Augmented Generation
- TensorFlow
- PyTorch
- Python
- Scala
- Java
- AWS
- Azure
- GCP
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