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Bosch Global Software Technologies Private Limited is a 100% owned subsidiary of Robert Bosch GmbH, one of the world's leading global supplier of technology and services, offering end-to-end Engineering, IT and Business Solutions. With over 27,000+ associates, it’s the largest software development center of Bosch, outside Germany, indicating that it is the Technology Powerhouse of Bosch in India with a global footprint and presence in the US, Europe and the Asia Pacific region.
The Video Perception (VIPer) team develops perception systems for L2+ Advanced Driver Assistance Systems (ADAS). As an Applied Computer Vision Engineer, you will be involved in the full development lifecycle of the perception stack. You will work on real-world problems by analyzing large datasets, experimenting with Deep Learning models like Convolutional Neural Networks (CNNs) and Transformers, and contributing to production-ready software.
Responsibilities
•Develop, train, and validate deep learning models for perception tasks such as object detection, semantic segmentation, and lane detection.
•Contribute to the design and implementation of experiments, performing rigorous analysis of model performance and identifying failure modes.
•Analyze large-scale, unstructured video data to derive insights and assist in curating high-quality datasets for model training.
•Collaborate with the team to build and maintain robust MLOps pipelines for data processing, training, and deployment.
•Implement and optimize algorithms in Python, ensuring they meet the performance requirements for real-time embedded systems.
•Document and present experimental results, architectural choices, and technical findings to the team and stakeholders.
Required Qualifications
•Education: Bachelor’s degree in Computer Science, Electrical Engineering, or a related field.
•Experience: 3-8 years of professional experience in computer vision or machine learning application development.
•Programming: Proficiency in Python and a strong understanding of object-oriented programming.
•Deep Learning Frameworks: Strong hands-on experience with modern DL frameworks such as PyTorch or TensorFlow 2+.
•Core Concepts: Solid understanding of deep learning fundamentals, including CNNs, object detection, and segmentation. A keen interest in learning and applying Transformers for vision is essential.
•Tools: Familiarity with essential software development tools like Git, Docker, and working in a Linux environment.
Education: Bachelor’s degree in Computer Science, Electrical Engineering, or a related field.
•Experience: 3-8 years of professional experience in computer vision or machine learning application development.
•Master’s degree in a relevant field.
•Prior experience in the ADAS, autonomous driving, or robotics domains.
•Experience with model optimization and deployment (e.g., TensorRT, ONNX).
•Familiarity with cloud platforms (AWS/Azure) and data processing tools (e.g., Spark).
•Exposure to Large Language Models (LLMs) and agentic AI concepts.
•While not required, hands-on experience with C++ is beneficial.
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