8 episodes

AI Explained is a series hosted by Fiddler AI featuring industry experts on the most pressing issues facing AI and machine learning teams.

Learn more about Fiddler AI: www.fiddler.ai

AI Explained Fiddler AI

    • Technology

AI Explained is a series hosted by Fiddler AI featuring industry experts on the most pressing issues facing AI and machine learning teams.

Learn more about Fiddler AI: www.fiddler.ai

    Metrics to Detect Hallucinations with Pradeep Javangula

    Metrics to Detect Hallucinations with Pradeep Javangula

    In this episode, we’re joined by Pradeep Javangula, Chief AI Officer at RagaAI
    Deploying LLM applications for real-world use cases requires a comprehensive workflow to ensure LLM applications generate high-quality and accurate content. Testing, fixing issues, and measuring impact are critical steps of the workflow to help LLM applications deliver value. 
    Pradeep Javangula, Chief AI Officer at RagaAI will discuss strategies and practical approaches organizations can follow to maintain high performing, correct, and safe LLM applications. 

    • 58 min
    AI Safety and Alignment with Amal Iyer

    AI Safety and Alignment with Amal Iyer

    In this episode, we’re joined by Amal Iyer, Sr. Staff AI Scientist at Fiddler AI. 
    Large-scale AI models trained on internet-scale datasets have ushered in a new era of technological capabilities, some of which now match or even exceed human ability. However, this progress emphasizes the importance of aligning AI with human values to ensure its safe and beneficial societal integration. In this talk, we will provide an overview of the alignment problem and highlight promising areas of research spanning scalable oversight, robustness and interpretability.

    • 57 min
    Managing the Risks of Generative AI with Kathy Baxter

    Managing the Risks of Generative AI with Kathy Baxter

    On this episode, we’re joined by Kathy Baxter, Principal Architect of Responsible AI & Tech at Salesforce.
    Generative AI has become widely popular with organizations finding ways to drive innovation and business growth. The adoption of generative AI, however, remains low due to ethical implications and unintended consequences that negatively impact the organization and its consumers. 
    Baxter will discuss ethical AI practices organizations can follow to minimize potential harms and maximize the social benefits of AI. 

    • 57 min
    Legal Frontiers of AI with Patrick Hall

    Legal Frontiers of AI with Patrick Hall

    On this episode, we’re joined by Patrick Hall, Co-Founder of BNH.AI.
    We will delve into critical aspects of AI, such as model risk management, generating adverse action notices, addressing algorithmic discrimination, ensuring data privacy, fortifying ML security, and implementing advanced model governance and explainability.

    • 58 min
    Building Generative AI Applications for Production with Chaoyu Yang

    Building Generative AI Applications for Production with Chaoyu Yang

    On this episode, we’re joined by Chaoyu Yang, Founder and CEO at BentoML.
    AI-forward enterprises across industries are building generative AI applications to transform their businesses. While AI teams need to consider several factors ranging from ethical and social considerations to overall AI strategy, technical challenges remain to deploy these applications into production.
    Yang, will explore key aspects of generative AI application development and deployment.

    • 59 min
    Graph Neural Networks and Generative AI with Jure Leskovec

    Graph Neural Networks and Generative AI with Jure Leskovec

    On this episode, we’re joined by Jure Leskovec, Stanford professor and co-founder at Kumo.ai.
    Graph neural networks (GNNs) are gaining popularity in the AI community, helping ML teams build advanced AI applications that provide deep insights to tackle real-world problems. Stanford professor and co-founder at Kumo.AI, Jure Leskovec, whose work is at the intersection of graph neural networks, knowledge graphs, and generative AI, will explore how organizations can incorporate GNNs in their generative AI initiatives. 

    • 52 min

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