Showing results by author "Anand V" in All Categories
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Using Generative AI: A Comprehensive Guide to Techniques and Practical Implementations
- By: Anand V
- Original Recording
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A comprehensive guide to the rapidly developing field of generative artificial intelligence (AI). The document introduces the core concepts, techniques, and applications of generative AI, including its history and evolution, key terminology, and different types of generative models such as Generative Adversarial Networks (GANs), Variational Autoencoders (VAEs), and diffusion models. The text provides practical examples, code snippets, and step-by-step instructions to help readers develop their own generative AI systems. Furthermore, the document explores advanced techniques like fine-tuning
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Generative AI and Netsuite
- By: Anand V
- Original Recording
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A comprehensive overview of how generative AI is transforming business operations, specifically within the context of NetSuite, a leading cloud-based ERP platform. The document explores the opportunities for integrating AI, particularly generative AI, to enhance decision-making, automate workflows, and improve customer experiences across various business functions. It also covers the technical aspects of integrating AI with NetSuite, including the use of APIs, data pipelines, and custom AI models.
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Securing Generative aI
- By: Anand V
- Original Recording
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Explains the security considerations for generative artificial intelligence (AI), which is a type of AI capable of creating new content, such as images and text. The document examines common threats to generative AI systems, such as adversarial attacks, data poisoning, and model theft, and presents techniques to mitigate these risks, such as robust training data, adversarial training, and secure data storage. The document also explores the ethical implications of generative AI, including issues of bias and discrimination, and offers guidelines for developing and deploying AI in a responsible
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LLM Training: Techniques and Applications
- By: Anand V
- Original Recording
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Acts as a comprehensive guide to the field of Large Language Model (LLM) training, covering various aspects from the basics of natural language processing (NLP) and LLM architecture to advanced techniques like transfer learning, reinforcement learning, and multi-task learning. The book also addresses practical considerations like data collection, preprocessing, and model evaluation while discussing ethical and privacy implications. Lastly, the text includes hands-on exercises an
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Large Language Models Essentials: Techniques, Tools, and Applications
- By: Anand V
- Original Recording
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Comprehensive guide to large language models (LLMs), artificial intelligence systems designed to understand and manipulate human language. It covers the history and evolution of LLMs, including key concepts like the Transformer architecture and attention mechanisms. The document then explores popular LLM models, such as GPT-3 and BERT, along with their use cases and applications in various industries, including business, finance, marketing, entertainment, and healthcare. The text further details the training process for LLMs, including data collection, preprocessing, and optimization technique
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Generative AI with Data Bricks
- By: Anand V
- Original Recording
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A comprehensive guide on using Databricks, a unified data analytics platform, to master generative AI, which involves creating new content like text, images, and audio. The guide covers various aspects of generative AI, including its history, common models like GANs and VAEs, and how to implement these models in Databricks. It also discusses how to scale AI projects, evaluate model performance, and deploy them effectively. The text emphasizes the importance of ethical considerations and highlights real-world applications of generative AI in fields such as healthcare, finance, and marketing.
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LLM Marketing: Harnessing AI to Revolutionize Customer Engagement
- By: Anand V
- Original Recording
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LLM Marketing: Harnessing AI to Revolutionize Customer Engagement explores the transformative power of Large Language Models (LLMs) in the marketing landscape. This book provides marketers, business leaders, and technologists with actionable insights into how AI-driven LLMs can optimize customer engagement strategies. It dives into the capabilities of LLMs in understanding customer behavior, crafting personalized content, automating responses, and delivering intelligent, real-time interactions.
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Enterprise Generative AI: Insights and Applications
- By: Anand V
- Original Recording
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Guide to understanding and implementing generative AI within organizations. It is divided into five parts, starting with an introduction to generative AI concepts, models, and applications. The second part focuses on practical steps for integrating generative AI into enterprises, covering data strategies, infrastructure, talent requirements, and transforming business models through AI.
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Generative AI Math: Applications and Practical Insights
- By: Anand V
- Original Recording
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a comprehensive overview of the mathematical foundations and applications of generative artificial intelligence (AI). It covers fundamental mathematical concepts like probability and statistics, linear algebra, and calculus, illustrating their relevance in the development and optimization of AI models. The document further explores various types of generative models, including Variational Autoencoders (VAEs), Generative Adversarial Networks (GANs)
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Open CV with Generative AI and LLM
- By: Anand V
- Original Recording
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OpenCV, a computer vision library, with Large Language Models (LLMs), which are AI systems designed to understand and generate human language. It covers the fundamentals of both technologies, including their key features and applications. The guide then explores the building blocks for integration, focusing on data preprocessing, feature extraction, and communication between OpenCV and LLMs. It further delves into practical implementations of this integration, covering various tasks like image captioning, object detection with contextual understanding, visual question answering, and scene text
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Generative AI Projects: A Hands-On Guide
- By: Anand V
- Original Recording
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Generative AI Projects: A Hands-On Guide" is a comprehensive resource designed for anyone eager to explore the world of generative AI through practical, real-world applications. This book is tailored to developers, AI enthusiasts, and data scientists who want to learn by doing, with a focus on creating functional generative AI solutions from scratch. It covers foundational concepts of generative models, including GANs (Generative Adversarial Networks), VAEs (Variational Autoencoders), and transformer-based architectures.
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SGP 32 Transition
- By: Anand V
- Original Recording
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A Comprehensive Guide to Innovation, Implementation, and Continuous Improvement," is a guide to help organizations transition to a new standard or framework known as SGP 32. The document details the key aspects of SGP 32, including its historical context, benefits, challenges, and implementation strategies. It covers areas such as resource allocation, change management, performance metrics, and best practices for achieving a successful transition. The document also explores the future outlook of SGP 32, emphasizing the importance of innovation, continuous improvement, and adapting to evolving
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Generative AI Ethics: Navigating Challenges and Opportunities
- By: Anand V
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Algorithms that create new content like text, images, and music. The document explores key ethical issues like bias and fairness, transparency and explainability, privacy and data security, autonomy and control, and accountability and responsibility. It also discusses frameworks for responsible development and deployment, including guidelines, regulations, and stakeholder perspectives.
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Generative AI in Drug Safety and Pharmacovigilance: A Comprehensive Guide
- By: Anand V
- Original Recording
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A comprehensive guide to understanding and implementing generative AI in the field of drug safety. The document explains the fundamentals of generative AI and its application in pharmacovigilance, including its potential for improving adverse event detection, risk prediction, data augmentation, and signal detection. It also examines the ethical, legal, and regulatory considerations surrounding AI in this domain
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LLM Time Series
- By: Anand V
- Original Recording
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Use of large language models (LLMs) for advanced time series analysis, focusing on how these powerful models can be used for forecasting, anomaly detection, and classification in various domains such as finance, healthcare, energy, and manufacturing. The book covers important topics related to preprocessing time series data for LLMs, adapting LLMs for specific applications, fine-tuning strategies, ethical considerations, and future trends in this emerging field.
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Future of LLM - Gemini
- By: Anand V
- Original Recording
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explores the groundbreaking advancements of the Gemini LLM, a state-of-the-art large language model. It details the model's key features, including its mastery of context, multimodal capabilities, and personalization. The text also delves into the historical development of large language models, highlighting the importance of the transformer architecture and pretraining techniques. Additionally, the document discusses the ethical considerations associated with LLMs, like bias and data privacy, as well as the potential impact of Gemini on various industries.
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Generative AI in Nursing
- By: Anand V
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Examining the increasing integration of Generative AI into the field of nursing. It explores the various ways AI can be used to improve patient care, enhance research, and streamline administrative tasks. The excerpt also discusses the ethical considerations associated with using AI in healthcare, such as data privacy, bias, and accountability, and offers predictions for the future of nursing in an increasingly AI-driven world.
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Generative AI and Web 3: A Practical Guide
- By: Anand V
- Original Recording
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Outlines fundamental concepts of both technologies, explains how they complement each other, and presents real-world use cases in diverse domains. The guide covers deep learning fundamentals, generative adversarial networks, variational autoencoders, and transformers, while also examining blockchain technology, cryptocurrencies, decentralized finance, and non-fungible tokens. It further details practical applications in areas like AI-powered smart contracts, decentralized data storage, AI-generated NFTs, and decentralized AI marketplaces.
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Amazon BedRock with Generative AI
- By: Anand V
- Original Recording
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The document "Amazon Bedrock and Generative AI.pdf" is a comprehensive guide to understanding and using Amazon Bedrock, a service designed to simplify the development and deployment of generative AI models. It covers the fundamentals of generative AI, explains how to use Bedrock to build, train, and evaluate models, and delves into advanced topics like scalable deployment, ethical considerations, and cost management. The document also includes hands-on projects and case studies to illustrate practical applications of generative AI across different industries.
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LLM Engineering
- By: Anand V
- Original Recording
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A comprehensive guide to Large Language Model (LLM) engineering, covering fundamental concepts, development practices, deployment strategies, and ethical considerations. The guide starts by introducing LLMs, their history, and various applications, then explores key NLP concepts and the Transformer architecture. The text then delves into LLM training techniques, including data collection, preprocessing, fine-tuning, and performance optimization. It also provides practical examples and hands-on exercises to illustrate various concepts and techniques. The guide further discusses advanced techniq
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