Vytwo Technologies Inc.
Linkedin · Posted 3mo ago
Data Scientist II – Model Validation and Monitoring
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Indexed description
Role : Data Scientist II – Model Validation and MonitoringLocation: Scottsdale AZ (Onsite)
- US Citizen & GC Only
- Must be legally authorized to work in US without need for employer sponsorship now or at any time in the future.
- Lead model monitoring activities, including tracking performance metrics, detecting model and data drift, identifying data quality issues, providing root cause analysis, and recommending remediation strategies.
- Conduct rigorous model validation by providing effective challenges during model development phases, including performance testing, benchmarking, provide remediation plan, and documentation to ensure models meet business, technical, and regulatory standards.
- Explore and aggregate data independently to uncover data anomalies that impact algorithm performance
- Write production level code in a dynamic, start-up environment
- Solve complex problems using terabyte size data sets
- Apply of a variety of machine learning techniques to a business problem to arrive at optimal approach
- Partner with Product and Engineering teams to solve problems and identify trends and opportunities
- Explain and visualize results and algorithm performance to non-technical audiences
- A minimum of 2 years of data science, engineering, mathematics, or related work experience is required.
- Experience developing data science pipelines & workflows in Python, R or equivalent programming language. Experience in writing and tuning SQL. Experience handling terabyte size datasets with Spark language.
- Experience applying various machine learning techniques, and understanding the key parameters that affect model performance
- Experience using ML libraries, such as scikit-learn, mllib, etc.
- Experience using data visualization tools
- Able to write production level code, which is well-written and explainable
- Ability to effectively communicate findings from complex analyses to non-technical audiences.
- Experience of using advanced ML algorithms building, testing, and deploying fraud models.
- Hands-on experience with PySpark
- Industry experience in building or validating machine learning models
- Experience exploring data and finding hidden patterns and data anomalies
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