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Principal Data Scientist/Machine Learning Engineer

2 months ago


San Francisco, United States Salesforce Full time

To get the best candidate experience, please consider applying for a maximum of 3 roles within 12 months to ensure you are not duplicating efforts.

Job Category

Software Engineering

Job DetailsAbout Salesforce

We’re Salesforce, the Customer Company, inspiring the future of business with AI + Data + CRM. Leading with our core values, we help companies across every industry blaze new trails and connect with customers in a whole new way. And, we empower you to be a Trailblazer, too — driving your performance and career growth, charting new paths, and improving the state of the world. If you believe in business as the greatest platform for change and in companies doing well and doing good – you’ve come to the right place.

About Us

Salesforce is the world's #1 AI CRM platform. Our Cloud Economics and Capacity Management team plays a crucial role in developing intelligent, data-driven tools that empower internal stakeholders to optimize infrastructure cost and utilization at a global scale, spanning both 1st Party and Public Cloud providers. We leverage advanced data science techniques to transform petabytes of data into actionable predictions, providing business insights to internal stakeholders.

Position Overview

We are seeking a talented and motivated Data Scientist with experience deploying, monitoring, and maintaining data science products to join our dynamic Cloud Economics and Capacity Management team. In this role, you will collaborate with internal stakeholders to understand their requirements, design innovative time series forecasting solutions, and contribute to the development, release, and maintenance of time series forecasting models. As a technical lead within our team, you will have the unique opportunity to directly impact the efficiency of Salesforce's global infrastructure.

Responsibilities
  1. Partner with cross-functional teams to understand business problems, produce insights, and inform infrastructure strategy at Salesforce.
  2. Lead and participate in the requirement, design, and development discussions driving improvements to the data science lifecycle.
  3. Develop and deploy production-ready models that contribute to actionable insights for capacity planners, financial analysts, service owners, and technical leaders.
  4. Continuously improve algorithmic performance with a focus on complex time series forecasting in the capacity management and FinOps space.
  5. Mentor team members and suggest improvements to reduce time-to-insight and mature our data science lifecycle.
Qualifications
  1. A related technical degree required.
  2. 6+ years of industry experience and a passion for crafting, analyzing and deploying machine learning-based solutions.
  3. Experience working as part of a team with mature data science products.
  4. Consistent record in building data science products using modern development lifecycle methodologies: CI/CD, QA, and Agile Methodologies.
  5. Experience deploying, monitoring and maintaining data science products in cloud environments such as AWS or Microsoft Azure.
  6. Good understanding of Machine Learning methods and Statistics, including data science project lifecycle and associated challenges at each stage of development.
  7. Proficient at writing good quality, well-documented and tested, scalable code - Python preferred. Experience with tools like mlFlow, Airflow, Docker and Cloud Platforms such as AWS/GCP is ideal.
  8. Solid understanding of data transformations and analytics functions using tools/languages like Pandas, Sklearn, SQL and Spark.
  9. Proven experience in machine learning engineering with a focus on time series forecasting.
  10. Excellent communication skills with the ability to interact directly with internal stakeholders.
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