Carlos Andrés Morales Machuca
CervellAi (en)
CervellAi is a podcast where artificial intelligence meets human insight. Produced by Carlos Andrés Morales Machuca, each episode explores key concepts like embeddings, neural networks, and ethical AI—making complex ideas accessible to curious minds. Whether you're a tech professional or just AI-curious, CervellAi connects the dots between innovation, impact, and understanding.
Autor
Carlos Andrés Morales Machuca
Categoría
Web del podcast
Último episodio
2 de nov. de 2025
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Episodios
Foundation Models Unpacked: How Self-Supervised Learning Solved the AI Data Bottleneck 02.11.2025 14:07
Excerpts from the Stanford conferences and Yann LeCun's commentary offer an overview of the field of self-supervised learning (SSL), an emerging paradigm in artificial intelligence. The sources explain that SSL allows you to train large-scale deep learning models using untagged data, which addresses the limitation of the need for large-tagged data sets in traditional supervised learning. They disc...
1 - 03 Generative Adversarial Networks: How GANs Work 26.10.2025 17:11
We offer an overview of Adversary Generative Networks (GAN), a type of machine learning algorithm that uses an adversarial learning framework with two submodules: a generator and a discriminator. The fundamental concept of GANs is explained with an analogy of a counterfeiter and the police, and generative modeling is deepened, highlighting the problem of intractable normalization constants and how...
1 - 02 How Retrieval Augmented Generation Fixed LLM Hallucinations 19.10.2025 16:44
The source material, an excerpt from a transcript of the IBM Technology video titled "What is Retrieval-Augmented Generation (RAG)?," explains a framework designed to enhance the accuracy and timeliness of large language models (LLMs). Marina Danilevsky, a research scientist at IBM Research, describes how LLMs often face challenges such as providing outdated information or lacking sources for thei...
1 - 03 Word Embeddings Explained 11.10.2025 16:41
An overview of word embeddings, explaining that they are numerical representations of words—often in the form of vectors—that capture their semantic and contextual relationships. The need to transform raw text into numbers arises from the inability of most machine learning algorithms to process plain text, making word embeddings a fundamental tool in natural language processing (NLP). The video de...
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