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RAG Quality Starts with Data Quality // Adam Kamor // #262

MLOps.community

NOTE

Tailor Solutions for Every Document Type

Understanding and optimizing machine learning systems, particularly in document processing, requires a case-by-case approach. Iterations and contextual performance are key, as different documents may need bespoke solutions rather than a one-size-fits-all algorithm. For instance, chunking question-answer pairs works effectively for FAQs, yet this method may not apply universally. Each document type might necessitate unique handling techniques, suggesting the importance of adaptability in engineering solutions. Despite achieving a functioning system, the challenge escalates when it comes to addressing edge cases and minimizing inaccuracies, highlighting that the most difficult tasks often lie in refining what is initially set up.

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