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Data Scientist – Mid-Level

Job in Phoenix, Maricopa County, Arizona, 85003, USA
Listing for: Jobtailor
Full Time position
Listed on 2026-09-10
Job specializations:
  • IT/Tech
    Data Scientist, Machine Learning/ ML Engineer, Data Analyst, AI Engineer (Applied/Software)
Salary/Wage Range or Industry Benchmark: 120000 - 160000 USD Yearly USD 120000.00 160000.00 YEAR
Job Description & How to Apply Below
  • Translate business problems into applied statistical, machine learning, simulation, and optimization solutions
  • Deliver actionable business insights and business value through automation, revenue generation, and expense and risk reduction
  • Collaborate with engineering partners to deliver scalable solutions and customer-facing applications
  • Use databases, cloud technologies, and programming to build analytical modeling solutions
  • Enhance USAA's tools and expand its library of internal packages and applications
  • Partner with Model Risk Management to validate model results and ensure model stability before production deployment
  • Gather, interpret, and manipulate structured and unstructured data
  • Develop scalable, automated solutions using machine learning, simulation, and optimization
  • Select modeling techniques and technologies based on data limitations, applications, and business needs
  • Develop and deploy models within the Model Development Control and Model Risk Management frameworks
  • Compose technical documentation for knowledge persistence, risk management, and technical review audiences
  • Assess business needs and recommend analytical and modeling projects
  • Participate in prioritizing analytics and modeling problems and research efforts
  • Contribute to a reusable, production-quality library of algorithms and supporting code
  • Translate business requests into analytical questions, execute analyses/models, and communicate outcomes to non-technical colleagues
  • Work with Data Engineering, IT, business teams, and internal stakeholders to deploy production-ready analytical assets
  • Maintain awareness of cutting-edge techniques and seek opportunities to learn new techniques, technologies, and methodologies
  • Identify, measure, monitor, and control risks in accordance with risk and compliance policies and procedures
Requirements
  • Bachelor's degree in Mathematics, Computer Science, Statistics, Economics, Finance, Actuarial Science, Science, Engineering, or a quantitative field; OR 4 years of relevant education and/or experience
  • 4 years of experience in predictive analytics or data analysis OR an advanced degree and 2 years of experience in predictive analytics or data analysis
  • 2 years of experience training and validating statistical, physical, machine learning, and other advanced analytics models
  • 2 years of experience with a dynamic scripted language such as Python or R for statistical analyses and/or building and scoring AI/ML models
  • Experience writing clear, well-documented, and transparent code
  • Experience querying and preprocessing structured and/or unstructured database data using SQL, HQL, No

    SQL, or similar query languages
  • Experience working with structured, semi-structured, and unstructured data files, including delimited numeric files, JSON/XML files, text documents, and images
  • Experience performing ad-hoc analytics using descriptive, diagnostic, and inferential statistics
  • Ability to assess regulatory implications and expectations of distinct modeling efforts
  • Experience with supervised modeling techniques including linear/logistic regression, discriminant analysis, support vector machines, decision trees, and forest models
  • Experience with unsupervised modeling techniques including k-means clustering, hierarchical/agglomerative clustering, neighbor algorithms, and DBSCAN
  • Experience communicating analytical and modeling results to non-technical business partners with actionable recommendations
  • Must not require immigration support or visa sponsorship now or in the future
Core Competencies

Demonstrates expertise in predictive analytics, machine learning, and statistical modeling, with a strong ability to translate complex data into actionable business insights. Proficient in collaborating with cross-functional teams to develop scalable analytical solutions and communicate results effectively to non-technical stakeholders.

Highest-signal resume keywords
  • Predictive Analytics
  • Machine Learning
  • Statistical Modeling
  • Python Programming
  • SQL Querying
Hard Skills
  • Predictive Analytics
  • Statistical Modeling
  • Machine Learning
  • Data Analysis
  • SQL
  • Python
  • R
  • Linear Regression
  • K-Means Clustering
  • Decision Trees
Soft Skills
  • Communication
  • Collaboration
  • Problem-Solving
  • Documentation
Industry Keywords
  • Model Risk Management
  • Risk Compliance
  • Data Manipulation
  • Analytical Solutions
  • Business Insights
Tools & Technologies
  • Cloud Technologies
  • Databases
  • AI/ML Models
  • Data Engineering
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