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Learners completing this course will be able to install and configure TensorFlow, create and execute variables, implement linear models, and apply deep learning frameworks to real-world projects. They will also gain practical skills in training, saving, and deploying models for computer vision tasks such as face mask detection.
This course begins by building strong foundations in TensorFlow, guiding learners through installation, setup, data types, variables, and model execution. Once comfortable with the basics, learners progress to a hands-on project—implementing a face mask detection application using TensorFlow and Keras. The project-based approach ensures that learners not only understand theoretical concepts but also gain experience applying them in a real-world scenario.
By the end of the course, learners will have mastered the essential workflow of building and training models, leveraging pretrained networks, and making predictions with confidence. The combination of foundational concepts and applied project work makes this course unique, offering both academic rigor and industry relevance. Whether preparing for a career in AI or enhancing existing skills, this course provides the knowledge and practice required to thrive in machine learning projects.