课程: AI Data Strategy: Data Procurement and Storage
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Building intelligent systems with data protection
- [Instructor] We've talked about bias in AI systems, but there's another fundamental challenge that's reshaping how we build AI products, privacy. Not just basic data protection, but actually building AI systems that can learn and improve while keeping sensitive information truly private. Let's look at this by way of an example. Imagine a major healthcare AI project. The team had built this incredibly sophisticated disease prediction model, trained on millions of patient records. The accuracy was impressive, over 90% in early tests. But here's the twist. They discovered that their model was accidentally memorizing specific patient details. In such a case, someone with the right technical knowledge could potentially extract sensitive medical information about individuals from the model itself. This example goes to show just why privacy-preserving AI is an essential non-negotiable. So, how are the leading AI teams doing this? Federated learning is a decentralized way to train AI…
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Sourcing structured data for ML-driven AI products6 分钟 50 秒
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Best practices for sourcing unstructured data4 分钟 32 秒
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Understanding bias in traditional ML systems6 分钟 42 秒
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Bias in generative AI: Challenges and mitigation strategies6 分钟 19 秒
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Framework for bias mitigation in AI4 分钟 2 秒
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Building intelligent systems with data protection5 分钟 13 秒
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Open data platforms: Democratizing AI development5 分钟 1 秒
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Leveraging APIs for AI6 分钟 45 秒
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Building sustainable data ecosystems5 分钟 3 秒
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