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Amazon Sr Applied Scientist AWS Data Center Infrastructure Operations 
United States, Virginia 
570244142

08.04.2024
DESCRIPTION

CIAT collects data from diverse sources of internal systems which often require cleaning, interpretation, and combination in order to tell a functional story. The Applied Scientist role is critical in transitioning the analysis output from Descriptive/Diagnostic to Predictive/Prescriptive, and providing the operations teams with actionable insights to enable ongoing improvements. The Applied Scientist will use a variety of tools (e.g. Python, SQL, SageMaker, R, SAS, etc.) to deep dive data sources to discover useful patterns that will drive process improvement or remediate systemic issues.Key job responsibilities
• Design, develop, and evaluate innovative ML models to solve diverse challenges and opportunities across data center global operations
• Drive end-to-end Machine Learning projects that have a high degree of ambiguity, scale, complexity.
• Build machine learning models, perform proof-of-concept, experiment, optimize, and deploy your models into production.
• Work with a scientists and software engineers to deliver machine-learning and data science solutions to production.
• Perform hands-on data analysis, employ statistical testing methods and strategies, run regular A/B tests, and clearly communicate the impact to technical and non-technical audiences in senior leadership.
• Establish scalable, efficient, automated processes for large-scale data analysis, machine-learning model development, model validation and serving.In this role you will apply advanced analysis techniques and statistical concepts to draw insights from enterprise scale datasets, build scalable machine learning models, and create intuitive data visualizations. You will contribute to each layer of the data solutions, working closely with Data Scientists, Engineers, Business Intelligence Engineers, and Global Process Owners to understand the business objectives, obtain relevant datasets and build prototype predictive and prescriptive analytic models. You will review key results with business leaders and stakeholders, and you will work with your team to develop and deploy a productionized version of the model to your global customers.
Herndon, VA, USA

BASIC QUALIFICATIONS

- 3+ years of building machine learning models for business application experience
- PhD, or Master's degree and 6+ years of applied research experience
- Experience programming in Java, C++, Python or related language
- Experience with neural deep learning methods and machine learning


PREFERRED QUALIFICATIONS

- Experience with modeling tools such as R, scikit-learn, Spark MLLib, MxNet, Tensorflow, numpy, scipy etc.
- Experience with large scale distributed systems such as Hadoop, Spark etc.