Amazon.com Services LLC
Machine Learning Science, Applied Science, Artificial Intelligence
AppliedScientist,ArtificialGeneralIntelligence
Neural analysis suggests this role is
optimal for Mid+ candidates.
“Applied Scientist, Artificial General Intelligence at Amazon.com Services LLC. Skills: Machine Learning, Data Quality, Auditing Frameworks, LLM Systems. Collaborate with core scientist team developing Amazon Nova. Lead development of comprehensive quality strategies”
What You'll Achieve.
Improve Nova performances on benchmarks; Uplift overall quality capabilities; Enhance customer experiences through high-quality training and evaluation data
Industry & Context.
Root cause analysis
What They're Looking For.
Must Have
Master's degree in computer science, mathematics, statistics, machine learning or equivalent quantitative field, Experience programming in Java, C++, Python or related language, Experience with SQL and an RDBMS (e. g. , Oracle) or Data Warehouse
Nice to Have
Experience implementing algorithms using both toolkits and self-developed code, Publications at top-tier peer-reviewed conferences or journals
What You'll Do.
Collaborate with core scientist team developing Amazon Nova
Lead development of comprehensive quality strategies
Lead development of auditing frameworks
Safeguard integrity of data collection workflows
Design auditing strategies with detailed SOPs
Design quality metrics
Design sampling methodologies
Perform expert-level manual audits
Conduct meta-audits to evaluate auditor performance
Provide targeted coaching to uplift quality capabilities
Develop LLM-as-a-Judge systems
Design judge architectures
Create evaluation rubrics
Build machine learning models for automated quality assessment
Set up configuration of data collection workflows
Communicate quality feedback to stakeholders
Enhance customer experiences through high-quality training and evaluation
Support quality solution design
Conduct root cause analysis on data quality issues
Research new auditing methodologies
Find innovative ways of optimizing data quality
Set examples for the team on quality assurance
Work closely with talented engineers
Work with domain experts
Work with vendor teams
Put quality strategies into practice
Put automated judging systems into practice
How You'll Work.
Team & Collaboration
Core scientist team; Talented engineers; Domain experts; Vendor teams
Full Job Description
The Artificial General Intelligence (AGI) team is seeking a dedicated, skilled, and innovative Applied Scientist with a robust background in machine learning, statistics, quality assurance, auditing methodologies, and automated evaluation systems to ensure the highest standards of data quality, to build industry-leading technology with Large Language Models (LLMs) and multimodal systems. Key job responsibilities As part of the AGI team, an Applied Scientist will collaborate closely with core scientist team developing Amazon Nova models. They will lead the development of comprehensive quality strategies and auditing frameworks that safeguard the integrity of data collection workflows. This includes designing auditing strategies with detailed SOPs, quality metrics, and sampling methodologies that help Nova improve performances on benchmarks. The Applied Scientist will perform expert-level manual audits, conduct meta-audits to evaluate auditor performance, and provide targeted coaching to uplift overall quality capabilities. A critical aspect of this role involves developing and maintaining LLM-as-a-Judge systems, including designing judge architectures, creating evaluation rubrics, and building machine learning models for automated quality assessment. The Applied Scientist will also set up the configuration of data collection workflows and communicate quality feedback to stakeholders. An Applied Scientist will also have a direct impact on enhancing customer experiences through high-quality training and evaluation data that powers state-of-the-art LLM products and services. A day in the life An Applied Scientist with the AGI team will support quality solution design, conduct root cause analysis on data quality issues, research new auditing methodologies, and find innovative ways of optimizing data quality while setting examples for the team on quality assurance best practices and standards. Besides theoretical analysis and quality framework development, an Applied Scie
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