Multimodal Sensing AI Research Intern: Build Next-Gen Models

Bosch

Pittsburgh (Allegheny County)

On-site

USD 33,000 - 47,000

Part time

6 days ago
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Job summary

BOSCH is seeking a Multi-modal Sensing AI Research Intern in Pittsburgh to develop state-of-the-art multi-modal models for active (radar, ultrasound) and passive sensing (acoustic, vibration, EEG) using signal processing and machine/deep learning.

Ideal candidates are PhD students in CS/EE with 2+ years of programming experience and proficiency in PyTorch Lightning and HuggingFace Transformers. You will collaborate with researchers and summarize findings for publications or patents.

Qualifications

  • Currently enrolled as PhD student in Computer Science, Electrical Engineering, or related fields.
  • 2+ years programming experience, proficiency in PyTorch (Lightning), HuggingFace (transformers), hydra.
  • Broad knowledge of machine- and deep-learning algorithms and principles and state-of-the-art methods.
  • Minimum GPA of 3.0

Responsibilities

  • Develop state-of-the-art multi-modal models for active (radar, ultrasound) and passive sensing (acoustic, vibration, EEG) use-cases using combination of classical signal processing and machine/deep learning-based approaches.
  • Research and develop solutions for multi-modal representation learning and modality adaptation with paired / unpaired sensor data.
  • Collaborate with other researchers to evaluate the developed model on downstream applications.
  • Summarize research findings in high-quality papers and/or patent submissions.

Skills

Python programming
Machine learning
Deep learning
Research mindset

Education

PhD student in Computer Science / Electrical Engineering or related fields

Tools

PyTorch Lightning
HuggingFace Transformers
Hydra

Job description

BOSCH is seeking a Multi-modal Sensing AI Research Intern in Pittsburgh to develop state-of-the-art multi-modal models for active (radar, ultrasound) and passive sensing (acoustic, vibration, EEG) using signal processing and machine/deep learning.

Ideal candidates are PhD students in CS/EE with 2+ years of programming experience and proficiency in PyTorch Lightning and HuggingFace Transformers. You will collaborate with researchers and summarize findings for publications or patents.

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