Machine Learning Engineer - Engineering Models
Ubifly Technologies Pvt Ltd Tiruporur, Tamil Nadu, India
Aviation and Aerospace Component Manufacturing · 201-500 employees
About the role
The role involves developing and deploying machine learning tools to automate engineering simulation tasks and build surrogate model libraries. You will be responsible for managing data pipelines, benchmarking new ML techniques, and integrating AI solutions into engineering workflows.
What they look for
Requirements
Candidates must have at least 3 years of experience in machine learning engineering with a focus on deep learning for scientific or engineering applications. Proficiency in PyTorch or TensorFlow and experience with surrogate or reduced-order modeling are required.
Full description
About The ePlane Company
The ePlane Company is at the forefront of India's urban air mobility revolution. Incubated at IIT Madras, we are a deep-tech startup dedicated to designing and building the world's most compact electric flying taxi. Our mission is to make door-to-door flying a reality, drastically reducing commute times and decongesting our cities for a cleaner, greener future. We're a passionate team of engineers, designers, and visionaries working on cutting-edge technology, and we're looking for brilliant minds to help us take flight.
Chart the Course for the Future of Flight
This role builds Machine Learning tools to enable reduction of the engineering workforce’s burden by developing internal ML-based tools across the organisation. This person will develop, research, and deploy ML algorithms across different engineering disciplines with focus towards engineering simulation related tools and building surrogate model libraries.
Roles and Responsibilities
- Conduct systematic data audits of existing simulation data including schema assessment, volume, cleanliness, and gaps; define supplementary data generation requirements
- Build and maintain data pipelines for model training, validation, and continuous retraining
- Build multi-domain model pipelines that chain individual surrogate models without manual handoff
- Develop training pipelines, architecture, and prototyping for ML algorithms
- Work on productising research prototypes
- Conduct experiments to benchmark new techniques and evaluate model behavior
- Develop systematic evaluation methodology: test sets, accuracy metrics, citation quality scoring, false positive/negative analysis
- Deploy AI tools to engineering teams with structured pilots, baseline measurement, and documented adoption outcomes
Requirements
Required Qualifications
- 3+ years ML engineering with a focus on deep learning for scientific or engineering applications
- Experience training regression/emulation models on physics or simulation data (surrogate modelling or reduced order modelling)
- Strong ML stack: PyTorch or TensorFlow, Pandas, NumPy, SciPy
- Surrogate modeling via Neural Networks or Gaussian Processes for use as fast-running model proxies.
- Proven understanding of fundamental data structures and the ability to apply them to solve complex problems.
- Development experience with retrieval pipeline skills and relational databases
Preferred Qualifications
- Understanding and deployment of Reinforcement Learning based tools
- Understanding of mathematics, particularly linear algebra and probability theory
- Experience with physics-informed neural networks (PiNNs) or hybrid physics-ML models
- Experience with multi-fidelity modelling or chained model pipelines
- Modeling complex multi-physics systems of ODEs and DAEs
- Gradient-based optimization
- Automatic differentiation tools and development
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