this post was submitted on 02 Sep 2024
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I often felt that current ML speeds up newbie devs by effectively teaching them the language and libraries — but slows down experts that already know the stack well from memory. I started coding in a new language and system, and ML can be a bit faster to teach me things and provide simple snippets than stack overflow
But over time I've learned that there are very specific things that ML can do really well, and I can save time when I apply those techniques. For example, it's excellent at converting from one language or style to another, ex migrating configs from json to yaml. It's also pretty good at writing configs or generating template code based on them. It's good at picking an emoji from a list. It can write small functions or provide a template html layout. So I humbled myself and started integrating it into my workflow where it actually works
It depends. You don't need LLMs to write stuff for you that you already know. You use them to take.care of the drudge work or explore things you are not familiar with. Things like Copilot's /explain can speed up onboarding even for seasoned developers, and Copilot can also help you speed up iterations on proofs of concept. For example, I've been using Copilot to experiment with some changes to the software architecture of some projects I own, and it's fantastic at generating code following specific design patterns. It's also fantastic to get it to iterate designs in near-real.time by prompting it with directives such as "repeat the last example but implementing X with design pattern Y and moving the implementation to Z". You are presented with examples that you can browse through and get a taste of what you'd get, but with a fraction of the time. To top things off, you can prompt Copilot to present pros and cons and even propose optimizations.
Like any tool, it has its purposes. You just need to learn how to use it.