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Amazon Sr. Data Scientist, AWS Enterprise Support Customer Health Insights in Austin, Texas

Description

AWS Sales, Marketing, and Global Services (SMGS) is responsible for driving revenue, adoption, and growth from the largest and fastest growing small- and mid-market accounts to enterprise-level customers including public sector.

Customer Health Insights, provides field teams with permissions-based data and metrics that quantify their customers’ AWS cloud health at a glance, and receive prescriptive guidance to maximize the value that customers get from AWS. This personalized experience connects field teams to everything they need to be trusted advisors to AWS customers and partners, and accelerate their cloud journey. CHI brings together data across Sales, Marketing and Global Services, to display a holistic view of customer health across multiple dimensions, along with AI-generated insights and recommendations to help AWS account teams and leadership solve issues, maximize customer value, and accelerate AWS adoption in the most efficient way possible.

As part of the CHI team, you'll be responsible for measuring the quality of inputs to CHI, accuracy of measures,and actionability and prioritization of recommendations. You will discover and solve real-world problems by analyzing large amounts of business data, defining new metrics and business cases, designing simulations and experiments, creating models, and collaborating with colleagues. You’ll bring with you a strong quantitative background and thrive in an environment that leverages statistics, machine learning, operations research, econometrics, and business analysis. And in return, you’ll have the chance to work on some of the world’s largest and diverse datasets.

Key job responsibilities

• Highly skilled in data and math/stats methods (e.g., scaling, modeling, algorithms). Investigates the feasibility of applying scientific principles and concepts to business problems and products.

• High intellectual curiosity with ability to quickly learn new concepts/frameworks, algorithms and technology

• Analysis of complex datasets to make decisions. Leads scientific research projects. Creates visualizations to drive data insight or describe an end-to-end system. Develops scalable algorithms and models

• Find opportunities to improve relevance and accuracy of CHI-generated recommendations to improve customer health, working closely with Engineering team and business owners

• Demonstrate a high degree of ownership, insist on the highest standards and consistently deliver superior quality results on-time

• Influences multiple teams. Works closely with business teams. Able to build consensus. Advises Sr. Manager/Director.

• Problems are complex to solve. Ability to select an ideal solution from a wide range of data science methodologies

• Takes the lead on large projects, requiring both business and technical domain knowledge expertise. Delivers significant benefit to business.

• Successfully launches data science solutions for the business with minimal assistance. Drives scientific understanding and changes in related systems. Makes technical trade-offs for long term/short-term needs.

About the team

Diverse Experiences

AWS values diverse experiences. Even if you do not meet all of the preferred qualifications and skills listed in the job description, we encourage candidates to apply. If your career is just starting, hasn’t followed a traditional path, or includes alternative experiences, don’t let it stop you from applying.

Why AWS?

Amazon Web Services (AWS) is the world’s most comprehensive and broadly adopted cloud platform. We pioneered cloud computing and never stopped innovating — that’s why customers from the most successful startups to Global 500 companies trust our robust suite of products and services to power their businesses.

Inclusive Team Culture

Here at AWS, it’s in our nature to learn and be curious. Our employee-led affinity groups foster a culture of inclusion that empower us to be proud of our differences. Ongoing events and learning experiences, including our Conversations on Race and Ethnicity (CORE) and AmazeCon (gender diversity) conferences, inspire us to never stop embracing our uniqueness.

Mentorship & Career Growth

We’re continuously raising our performance bar as we strive to become Earth’s Best Employer. That’s why you’ll find endless knowledge-sharing, mentorship and other career-advancing resources here to help you develop into a better-rounded professional.

Work/Life Balance

We value work-life harmony. Achieving success at work should never come at the expense of sacrifices at home, which is why we strive for flexibility as part of our working culture. When we feel supported in the workplace and at home, there’s nothing we can’t achieve in the cloud.

We are open to hiring candidates to work out of one of the following locations:

Arlington, VA, USA | Austin, TX, USA | Dallas, TX, USA

Basic Qualifications

  • 5+ years of data querying languages (e.g. SQL), scripting languages (e.g. Python) or statistical/mathematical software (e.g. R, SAS, Matlab, etc.) experience

  • 4+ years of data scientist experience

  • Experience with statistical models e.g. multinomial logistic regression

Preferred Qualifications

  • 2+ years of data visualization using AWS QuickSight, Tableau, R Shiny, etc. experience

  • Experience managing data pipelines

  • Experience as a leader and mentor on a data science team

Amazon is committed to a diverse and inclusive workplace. Amazon is an equal opportunity employer and does not discriminate on the basis of race, national origin, gender, gender identity, sexual orientation, protected veteran status, disability, age, or other legally protected status. For individuals with disabilities who would like to request an accommodation, please visit https://www.amazon.jobs/en/disability/us.

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