Solomon Page

Data Scientist

Solomon Page$114K — $124K *
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 5+ years of experience in data science or statistical analysis
  • Expertise in hypothesis testing, OLS, GLM, and causal inference techniques
  • Proficient in Python and SQL for data analysis and modeling
  • Hands-on experience with A/B testing and experimental design
  • Familiar with enterprise cloud analytics environments like Databricks
  • Strong problem-solving skills with a self-starter mentality
  • Ability to collaborate effectively with cross-functional teams

Responsibilities

  • Design and implement measurement frameworks for production solutions
  • Apply statistical inference and causal methods including A/B testing and propensity score matching
  • Develop and analyze controlled experiments and observational studies to measure impacts
  • Collaborate with stakeholders to define KPIs and measurement strategies
  • Write clean, reproducible code for experimentation and reporting
  • Implement CI/CD practices and maintain code in GitHub Enterprise
  • Manage large-scale datasets within enterprise environments like Databricks

Benefits

  • Opportunity to work on impactful enterprise solutions
  • Access to advanced analytics tools and platforms
  • Collaboration with cross-functional teams
  • Focus on causal inference and experimentation
  • Professional development and skill enhancement opportunities
Full Job Description
Summary / Quick Intro
We are seeking a Data Scientist with strong expertise in statistical inference and causal analysis to design and build measurement frameworks for enterprise solutions. This role focuses on designing experiments, applying causal inference techniques, and developing scalable systems to measure business impact. The ideal candidate will combine strong analytical thinking with practical engineering skills to deliver reliable insights and data-driven decision frameworks.

Pay range :$55 /hr to $60/hr on w2

• Responsibilities
  • Design and implement measurement frameworks for solutions deployed in production environments
  • Apply statistical inference and causal methods such as A/B testing, propensity score matching, and instrumental variables
  • Develop and analyze controlled experiments and observational studies to measure product or operational impact
  • Collaborate with business and technical stakeholders to define KPIs, success metrics, and measurement strategies
  • Write clean, reproducible code for statistical analysis, experimentation, and reporting
  • Implement CI/CD practices and maintain code repositories using GitHub Enterprise
  • Work within enterprise data environments such as Databricks to manage large-scale datasets and analysis pipelines

• Qualifications
  • Strong understanding of hypothesis testing, OLS, GLM, and causal inference techniques
  • Proficiency in Python and SQL for statistical modeling and data analysis
  • Experience with libraries such as statsmodels, scikit-learn, DoWhy, and linearmodels
  • Hands-on experience with A/B testing and experimental design methodologies
  • Familiarity with enterprise cloud analytics environments such as Databricks
  • Strong problem-solving ability with a self-starter mindset and ownership mentality
  • Ability to work independently while collaborating effectively with cross-functional teams

Preferred Qualifications
  • Experience in retail, inventory management, or operations research domains
  • Exposure to cloud platforms such as Amazon Web Services, Microsoft Azure, or Google Cloud Platform

• Call to Action

If you are passionate about causal inference, experimentation, and building data-driven measurement frameworks, apply today and help shape the future of enterprise analytics.

Summary / Quick Intro
We are seeking a Data Scientist with strong expertise in statistical inference and causal analysis to design and build measurement frameworks for enterprise solutions. This role focuses on designing experiments, applying causal inference techniques, and developing scalable systems to measure business impact. The ideal candidate will combine strong analytical thinking with practical engineering skills to deliver reliable insights and data-driven decision frameworks.

• Responsibilities
  • Design and implement measurement frameworks for solutions deployed in production environments
  • Apply statistical inference and causal methods such as A/B testing, propensity score matching, and instrumental variables
  • Develop and analyze controlled experiments and observational studies to measure product or operational impact
  • Collaborate with business and technical stakeholders to define KPIs, success metrics, and measurement strategies
  • Write clean, reproducible code for statistical analysis, experimentation, and reporting
  • Implement CI/CD practices and maintain code repositories using GitHub Enterprise
  • Work within enterprise data environments such as Databricks to manage large-scale datasets and analysis pipelines

• Qualifications
  • Strong understanding of hypothesis testing, OLS, GLM, and causal inference techniques
  • Proficiency in Python and SQL for statistical modeling and data analysis
  • Experience with libraries such as statsmodels, scikit-learn, DoWhy, and linearmodels
  • Hands-on experience with A/B testing and experimental design methodologies
  • Familiarity with enterprise cloud analytics environments such as Databricks
  • Strong problem-solving ability with a self-starter mindset and ownership mentality
  • Ability to work independently while collaborating effectively with cross-functional teams

Preferred Qualifications
  • Experience in retail, inventory management, or operations research domains
  • Exposure to cloud platforms such as Amazon Web Services, Microsoft Azure, or Google Cloud Platform

• Call to Action

If you are passionate about causal inference, experimentation, and building data-driven measurement frameworks, apply today and help shape the future of enterprise analytics.

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