arun @ nyu

351 posts

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arun @ nyu

arun @ nyu

@ArunPatro

slowing down // cs @ nyu //

Katılım Aralık 2014
615 Takip Edilen276 Takipçiler
Nishant Nikhil
Nishant Nikhil@nishnik·
Stoked to join @Meta Superintelligence Lab, and excited to train better models at 🚀 speed!
steve jang@stevejang

Congratulations to @felfel @HammadH4 @keikumata and the entire @PlayAIOfficial team on their acquisition by @Meta Superintelligence Lab! All of us @kindredventures are thankful and honored to be part of their journey as their lead seed investor last year. I'm stoked for them to get all the GPUs and gigawatts they want now at Meta and continue their incredible speech model and voice agent work with Mark, Alex, Nat, and team. :) More below on their story: kindredventures.com/announcement/p…

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Eric Glyman
Eric Glyman@eglyman·
If you've been meaning to get into drinking, ask your friends in marketing to take you to a business dinner - almost 20% of the check on average will go towards booze. @arakharazian and the data team at @tryramp are finding some incredible things.
Eric Glyman tweet mediaEric Glyman tweet media
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rahul
rahul@rahulgs·
we're hiring full stack engineers to work on llms at ramp if interested, dm me with examples of real things you've built come work on real deployments and learn how to drive enterprise value we're a small and mighty team what we've worked on in the last year: - multi-step agents for document extraction / ocr (sota accuracy, probably). llm agents + constraint solvers - low-latency next action prediction in our web app (more soon) - ramp tour guide: x.com/tryramp/status… - web agents for solving c*ptchas - codebase import cycle removal with ast parsing/graph cutting algorithms + llms in our python monolith backend - sales outbound automation and lead scoring agents - llm model routing between third party providers (+per feature cost tracking) - llm infra: embedding/reranking/generation finetuning and on-prem deployment/inference - structured extraction (github.com/1rgs/jsonformer) - customer feedback extraction from meeting recordings / routing to marketing - internal tools for: underwriting team/product team/sales/customer support teams - global search / function calling copilot - receipt matching (retrieval) - sms llm interface (function calling) - suggested memos - automated accounting coding - natural language report generation + more
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arun @ nyu
arun @ nyu@ArunPatro·
Search methods like Tree-of-Thoughts have become immensely popular for solving problems that often fail with direct prompting techniques like Chain-of-Thought. In our internal applications of graph-based search methods, we found these methods difficult to debug and interpret.
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Normal Computing 🧠🌡️
Normal Computing 🧠🌡️@NormalComputing·
Extended Mind Transformers (EMTs) are a new approach to working with very large contexts and external data sources developed by @KlettPhoebe, @thomasahle, Normal's AI team. Inspired by the Extended Mind Thesis, we modify Multihead Attention to directly query a vector database.
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arun @ nyu
arun @ nyu@ArunPatro·
Thursdays are for Singular Learning Theory by the park!
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Normal Computing 🧠🌡️
Normal Computing 🧠🌡️@NormalComputing·
At Normal, we build full-stack objective-driven AI systems capable of reasoning in the real world. In our latest Blog, we examine explainability techniques for language models that we’ve found useful for improving reliability in reasoning. 👇👇 blog.normalcomputing.ai/posts/2023-10-…
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