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AWS Certified AI Practitioner AIF-C01 Practice Question

A startup wants to adjust the responses of a large language model for its product descriptions but must minimize up-front compute and storage spend. Which customization method best aligns with this cost constraint?

  • Performing full fine-tuning of all model parameters

  • Running parameter-efficient fine-tuning (for example, LoRA) and hosting a custom model endpoint

  • Using in-context learning by supplying task examples in the prompt

  • Pre-training a new model from scratch using public datasets

AWS Certified AI Practitioner AIF-C01
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