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Udemy Instructor (1M+ Students), CEO
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Large Language Models (LLMs) learn and perform based on the information they’re given. For powerful tools like RAG (Retrieval Augmented Generation) LLMs, it’s even more critical that they are trained and fed with accurate, relevant data from our own products and systems to ensure they truly understand and interact effectively with our customers. This session will explore a fundamental question: how do we ensure the data we’re sending to these intelligent LLMs is correct, complete, and unbiased?
We’ll discuss how data often comes from many different sources, needing to be gathered and prepared (a process known as ETL – Extract, Transform, Load). ETL testing plays a crucial role in validating this data, ensuring it is accurate, consistent, and clean before it trains the LLM. This preparation isn’t just about shaping the data for business needs, but also about making sure it meets ethical standards and avoids introducing unfair biases. We will highlight how even small errors or flaws in this data can lead to serious problems for the LLM, such as giving out wrong information, showing unwanted biases, or simply performing poorly. Join us to learn how proper data testing acts as a crucial safeguard, guaranteeing your LLMs are built on a solid foundation of quality data, leading to better customer interactions and more reliable AI
More about TOPIC
Good Data Makes Smart AI
For LLMs, especially those built to understand your business and customers (like RAG models), the quality of their training data is everything. If the data is good, the AI works well; if it’s flawed, the AI will struggle.
ETL Testing Skills are Changing
In the world of AI, the job of an ETL tester is getting bigger. It’s not just about moving data anymore; it’s about checking huge amounts of messy data, finding hidden biases, and making sure the data flows smoothly for AI training.
Reliable Data Helps Everyone
Beyond just AI, solid ETL testing means you have clean, dependable data. This is crucial for making smart business decisions, understanding what’s happening in your company, and building accurate AI systems.
Rahul Shetty (also known as Venkatesh) is a renowned QA Instructor with over 1 million students on Udemy. He is the author of more than 25 best-selling Test Automation courses and the founder of the EdTech QA platform RahulShettyAcademy.com. An international speaker, he regularly presents at QASummit.org events around the globe.
Niranjan V.S. is a senior industry leader with nearly three decades of global experience working with international clients across industries to help them succeed in their enterprise-wide transformation journeys. In his current role as Senior Vice President and Service Offering Head for Infosys Quality Engineering Service Line at Infosys, Niranjan has played a key role in transforming the business from old school validation to the industry leading quality engineering organization. Outside his professional life, he enjoys spending time with family, travel and read about new emerging trends impacting the society at large.
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