Capital One
Banking
AppliedResearcherII
“Applied Researcher II at Capital One. Skills: AI, ML, Applied Research, deep learning, large deep learning models, NLP. Deliver AI-powered products. Build AI foundation models through all phases of development”
What You'll Achieve.
Deliver AI-powered products that change how customers interact with their money; Push them into the next generation of customer experiences
Industry & Context.
Analyzing; Creating; Making the right decision for our customers; Pushing hard to find answers
What They're Looking For.
Must Have
PhD in Electrical Engineering, Computer Engineering, Computer Science, AI, Mathematics, or related fields, with an exception that required degree will be obtained on or before the scheduled start date plus 2 years of experience in Applied Research, MS in Electrical Engineering, Computer Engineering, Computer Science, AI, Mathematics, or related fields plus 4 years of experience in Applied Research
Nice to Have
PhD in Computer Science, Machine Learning, Computer Engineering, Applied Mathematics, Electrical Engineering or related fields, LLM, PhD focus on NLP or Masters with 5 years of industrial NLP research experience, Multiple publications on topics related to the pre-training of large language models (e.g. technical reports of pre-trained LLMs, SSL techniques, model pre-training optimization), Member of team that has trained a large language model from scratch (10B + parameters, 500B+ tokens), Publications in deep learning theory, Publications at ACL, NAACL and EMNLP, Neurips, ICML or ICLR, Optimization (Training & Inference), PhD focused on topics related to optimizing training of very large deep learning models, Multiple years of experience and/or publications on one of the following topics: Model Sparsification, Quantization, Training Parallelism/Partitioning Design, Gradient Checkpointing, Model Compression, Experience optimizing training for a 10B+ model, Deep knowledge of deep learning algorithmic and/or optimizer design, Experience with compiler design, Finetuning, PhD focused on topics related to guiding LLMs with further tasks (Supervised Finetuning, Instruction-Tuning, Dialogue-Finetuning, Parameter Tuning), Demonstrated knowledge of principles of transfer learning, model adaptation and model guidance, Experience deploying a fine-tuned large language model
What You'll Do.
Deliver AI-powered products
Build AI foundation models through all phases of development
Engage in high impact applied research
Take the latest AI developments and push them into the next generation of customer experiences
How You'll Work.
Team & Collaboration
Partner with a cross-functional team of data scientists, software engineers, machine learning engineers and product managers; Work with product, technology and business leaders; Work with stakeholders to identify and improve the status quo
Communication Scope
Translate the complexity of your work into tangible business goals
Process & Methodology
Own and pursue a research agenda, Choosing impactful research problems, Autonomously carrying out long-running projects
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