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{ "item_title" : "Insights of Testing Machine Learning Models", "item_author" : [" Rahul Shetty (Venkatesh) "], "item_description" : "This comprehensive guide explores the evolving landscape of AI testing through the lens of experienced QA professional/Instructor Rahul Shetty(Venkatesh) . From traditional software testing to the complexities of machine learning model validation, the book offers practical strategies for ensuring AI systems are accurate, ethical, and reliable. Readers will discover approaches for data quality assessment, bias detection, continuous monitoring, and responsible AI development. Through real-world case studies and hands-on examples, Venkatesh shares invaluable insights on testing generative AI, RAG-based models, and autonomous systems. Essential reading for QA engineers navigating the challenges of AI innovation and seeking to build trustworthy, high-performing AI solutions.Connect with me at - rahulshettyacademy.com", "item_img_path" : "https://covers2.booksamillion.com/covers/bam/9/34/953/220/9349532204_b.jpg", "price_data" : { "retail_price" : "15.00", "online_price" : "15.00", "our_price" : "15.00", "club_price" : "15.00", "savings_pct" : "0", "savings_amt" : "0.00", "club_savings_pct" : "0", "club_savings_amt" : "0.00", "discount_pct" : "10", "store_price" : "" } }
Insights of Testing Machine Learning Models|Rahul Shetty (Venkatesh)

Insights of Testing Machine Learning Models : A QA Perspective

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Overview

This comprehensive guide explores the evolving landscape of AI testing through the lens of experienced QA professional/Instructor Rahul Shetty(Venkatesh) . From traditional software testing to the complexities of machine learning model validation, the book offers practical strategies for ensuring AI systems are accurate, ethical, and reliable. Readers will discover approaches for data quality assessment, bias detection, continuous monitoring, and responsible AI development. Through real-world case studies and hands-on examples, Venkatesh shares invaluable insights on testing generative AI, RAG-based models, and autonomous systems. Essential reading for QA engineers navigating the challenges of AI innovation and seeking to build trustworthy, high-performing AI solutions.

Connect with me at - rahulshettyacademy.com

Details

  • ISBN-13: 9789349532205
  • ISBN-10: 9349532204
  • Publisher: Verses Kindler Publication
  • Publish Date: July 2025
  • Dimensions: 8.5 x 5.5 x 0.3 inches
  • Shipping Weight: 0.29 pounds
  • Page Count: 118

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