A Cloud-based Multi-Agentic Workflow for Science
Anurag Acharya, Timothy Vega, Rizwan A. Ashraf, Anshu Sharma, Derek Parker, Robert Rallo

TL;DR
This paper introduces a cloud-based, multi-agent workflow system for scientific research that efficiently manages complex tasks like literature review, data analysis, and simulations, demonstrating high task routing accuracy and successful completion rates.
Contribution
It presents a novel, domain-agnostic, model-independent agentic framework for scientific workflows that integrates multiple agents and external resources on the cloud.
Findings
Achieves 90% correct task routing
Completes tasks with 97.5% success rate on synthetic benchmarks
Performs with over 91% success on real-world chemistry tasks
Abstract
As Large Language Models (LLMs) become ubiquitous across various scientific domains, their lack of ability to perform complex tasks like running simulations or to make complex decisions limits their utility. LLM-based agents bridge this gap due to their ability to call external resources and tools and thus are now rapidly gaining popularity. However, coming up with a workflow that can balance the models, cloud providers, and external resources is very challenging, making implementing an agentic system more of a hindrance than a help. In this work, we present a domain-agnostic, model-independent workflow for an agentic framework that can act as a scientific assistant while being run entirely on cloud. Built with a supervisor agent marshaling an array of agents with individual capabilities, our framework brings together straightforward tasks like literature review and data analysis with…
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Taxonomy
TopicsMachine Learning in Materials Science · Scientific Computing and Data Management · Artificial Intelligence in Healthcare and Education
