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Data Scientist / Machine Learning Scientist | Senior/Staff/Principal
Salesforce is the global leader in Cloud-based (SaaS) solutions that enable the world’s premier brands to maintain a robust online presence with high ROI. We do that by providing a highly scalable, integrated cloud platform that allows our clients to rapidly launch and manage multiple e-commerce stores, initiate unique marketing campaigns, and drive customer traffic across a global footprint.
We are looking for a top-notch machine learning scientist/data scientist to join the machine learning science team of our customer 360 personalization effort. Our team is tasked with producing performant machine learning models to enhance and personalize the shopper experience through search, product recommendations, content personalization, promotion selection, and much more. In addition, we augment and automate the work of the merchandiser and admins to enable them to react faster and better to changing markets, trends, and customer demands. You will be responsible for turning business needs into machine learning solutions that we can deploy to production in collaboration with our engineering teams. To achieve this, you will research, design, prototype, and build machine learning systems, with large-scale training and offline/online tuning and experimentation.
The successful candidate will work with world-class database gurus, software and machine learning engineers, research scientists, and fellow machine learning scientist. We are looking for someone who gets a kick out of staying on top of the latest machine learning literature/tools/techniques and figuring out the best way to apply these for practical solutions. We encourage contribution to tools and knowledge sharing within the team, the company, and the industry.
Responsibilities
Work with product management and leadership to translate business problems to data science problems
Research, prototype, and build demonstrations of machine learning ideas for quick validation and feedback
Design and build machine learning systems to hit accuracy and performance metric targets
Productize machine learning systems in collaboration with engineering teams
Design and conduct experiments to ensure optimal performance of machine learning systems
Educate engineering and product teams about data science during collaboration
Mentor and collaborate with other members of the data science team
Share technical innovations to the team and across the company
Create new innovations and contribute to conferences and/or open-source tools
Qualifications
Must-Have
Fluent in prototyping/building machine learning models and algorithms and wrangling large datasets
Ph.D. in a quantitative discipline with 3+ years of relevant experience or a BS/MS in a quantitative discipline with 6 - 10 years of relevant experience.
Knowledgeable about classical machine learning as well as deep learning approaches
Proficient in using Python scientific stack (e.g. Numpy, Pandas, PyTorch, SciPy, Jupyter)
Proficient in shell scripting, Unix/Linux command-line tools, working with cloud infrastructure (AWS)
Great communication skills: ability to discuss with scientists, engineers, designers, and product managers
Nice to have
Ph.D. with 5-10 years of relevant experience
Experience in shipping machine learning model systems into large-scale production systems
Deep Experience in reinforcement learning, deep learning, causal inference, and information retrieval
Experience in building machine learning models for e-commerce problems like search and recommendations
Open-source machine learning code from one's paper, contributions to any projects, implementations of papers
Publications in any of {cvpr, iccv, eccv, neurips, iclr, icml, acl, emnlp, recsys, kdd}
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