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The Video Perception (ViPER) team is responsible for developing cuttingedge solutions for Advanced Driver Assistance Systems (ADAS). Our team is responsible for developing endtoend solutions by leveraging the latest advancements in the field of computer vision/deep learning. Our goal is to drive the future of autonomous driving systems by providing reliable highperformance video perception systems.
As part of the ViPER team your role would entail helping us in developing L3/L4 ADAS which would primarily involve (1) Understanding of the underlying data derive insights/patterns/failures (2) Based on the underlying unstructured unsupervised data come up with methods for enabling efficient searching of data (3) Derive experiments to develop perception models using this data introducing cycles of experiments analysis & validation
Requirements
Strong technical background. At least a Bachelors/Master of Engineering in Computer Science or Electrical Sciences or related areas with 4 years of industry experience in designing and implementing perception algorithms
Skilled software engineer with experience in C and strong problemsolving skills
Passionate about solving realworld robotics problems: ideally worked on autonomous driving systems before. Prior knowledge of working with deep neural networks is a strong plus.
A team player: You take ownership and work with the team to deliver exceptional results
Ability to build and iterate quickly (AGILE mindset). You enjoy working fast and smart and you are comfortable in the earlier stages of developing an algorithm from scratch
Good hands on: You dig deep into important details such as the sensor driver if it improves the overall system. You like working with production machine learning pipelines from dataset collection and labeling to training and validation
Great communicator: You have experience writing clear concise and detailed documentation. You should be able to explain technical solutions clearly to nontechnical/different audience
Skills
Strong knowledge in DL (3yrs min) : fewshot learning transfer learning unsupervised and semisupervised methods active learning and semiautomated data annotation large scale image and video detection and recognition
Hands on experience in Full stack Vision/Image related projects in production (3yrs min)
Data: Spark Hadoop (user level) visualization data preparation data handling understanding data
Model: Tensorflow 2 & PyTorch
Deployment: Docker Flask Kubernetes
Cloud deployment: Azure/AWS
Other skiils: Git Linux Cuda OpenMP Distributed systems
Qualifications :
B.E/
Additional Information :
4 years
Remote Work :
No
Employment Type :
Fulltime
Full-time