The course "Practical Methodologies and Ethics in AI" equips learners with the essential skills needed to build, evaluate, and deploy deep learning models, while also addressing critical ethical considerations in AI. Through hands-on projects and case studies, you’ll explore the practical methodologies used to train models effectively, troubleshoot issues, and apply structured probabilistic approaches to manage uncertainty. A key highlight of the course is its emphasis on ethics, enabling you to identify and address bias, fairness, and societal implications throughout the AI lifecycle. By integrating structured probabilistic models with deep learning, you’ll gain the ability to create robust, interpretable AI systems that tackle real-world challenges.

Practical Methodology and Ethics in AI

Practical Methodology and Ethics in AI
This course is part of Foundations of Neural Networks Specialization

Instructor: Zerotti Woods
What you'll learn
Learners will gain hands-on experience training and debugging deep learning models while considering deployment challenges and best practices.
Students will understand and evaluate ethical concerns in AI, including bias, fairness, and the societal impact of deploying neural networks.
Learners will explore how to integrate structured probabilistic models with deep learning, reducing uncertainty and improving model decision-making.
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Assessments
6 assignments
Taught in English
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This course is part of the Foundations of Neural Networks Specialization
When you enroll in this course, you'll also be enrolled in this Specialization.
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There are 4 modules in this course
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