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Job Description
Responsibilities
- Design and implement deep learning models for image, video, object detection, and audio classification tasks.
- Apply and fine-tune CNN-based architectures and Vision Transformers (e. g., ViT, Swin).
- Integrate attention mechanisms (e. g., SE, CBAM, Transformer attention) into model architectures for enhanced feature learning.
- Utilize pretrained models for transfer learning and multi-task learning.
- Work with video data using spatiotemporal modeling techniques (e. g., 3D CNNs, temporal attention).
- Extract and process features from audio using spectrograms, MFCCs, or learned embeddings.
- Evaluate and optimize models for speed, accuracy, and robustness.
- Collaborate across teams to deploy models into production.
- Strong programming skills in Python, with experience in PyTorch or TensorFlow.
- Hands-on experience with CNNs, pretrained networks, and attention modules.
- Solid knowledge of Vision Transformers, including recent architectures (e. g., Swin, DeiT).
- Understanding of attention mechanisms (self-attention, cross-attention, squeeze-and-excitation, etc. ).
- Experience implementing and training object detection models (YOLO, SSD, Faster R-CNN, RetinaNet, DETR).
- Experience in video analysis and temporal modeling.
- Strong grasp of audio classification workflows and features.
- Experience handling large-scale datasets and designing data pipelines.
- Familiarity with training strategies for deep models, including learning rate scheduling, early stopping, and data augmentation.
Skills
PythonDeep LearningAiIf a job posting appears fraudulent, asks for payment, contains misleading information, or violates our guidelines, please report it immediately. Our team will review it promptly, Jobaaj does not charge any fee from the applicants.
About Company
Important dates & deadlines?
Application Deadline
24 Nov 25, 05:40 PM IST
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