Quick Overview
Seniority
Mid Senior
Work mode
Hybrid
Location
Plano, TX, United States
Posted
Yesterday
SQLAWSMLOpsTableauAirflowApacheConfluenceDatabricksPostgreSQLPython
Job Description
Role Overview
We re looking for an experienced Data Scientist to support our AI/ML-powered pricing engine. This role sits between data engineering and business analytics, building scalable data models, pricing insights, and analytics solutions that drive data-informed pricing decisions.
Key Responsibilities
- Design and build analytical data models and ELT pipelines using Databricks, PySpark, and SQL
- Develop pricing analytics including elasticity, competitive pricing, margin optimization, and recommendation outputs
- Create Tableau dashboards and enable self-service analytics for business stakeholders
- Orchestrate and monitor pipelines using Apache Airflow; ensure data quality, reliability, and performance
- Collaborate with data scientists to productionalize ML models via Amazon SageMaker
- Optimize queries and data processing for large-scale datasets
- Partner with product, pricing, and business teams to deliver actionable insights
- Document data models, logic, and best practices in Confluence
Required Qualifications
- 7 10 years of experience in analytics engineering, BI, or data analytics
- Strong SQL and dimensional data modeling expertise
- Advanced Python/PySpark and Databricks experience (Delta Lake, Spark SQL)
- Proven Tableau dashboard development experience
- Hands-on experience with Airflow and AWS (S3, Lambda, SageMaker)
- Knowledge of pricing analytics and revenue optimization concepts
- Experience with Denodo or similar data virtualization tools
- Strong communication skills and ability to translate business needs into analytics solutions
- Bachelor s degree required; Master s and relevant certifications preferred
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Additional information:
Talent needs in data, analytics, and AI
- Have historically struggled to find talent within the data and analytics business organization, particularly for the data-and-AI work supporting the business unit.
- The client s expectations have shifted away from traditional staffing models toward more forward-deployed engineers who can do more than one thing.
- Desired profiles now include people who can handle development, testing, and other multi-skilled engineering work, rather than single-skill specialists.
- Identified specific hard-to-source technologies and capabilities, including:
- PostgreSQL and related database skills
- Fivetran, which he noted is especially difficult to source
- Broader AI-ready engineering capability, with an AI-first mindset focused on building agents and automating tasks through agentic workflows
- The business is starting to pivot traditional data engineering roles into hybrid data + AI roles.
- Additional demand was identified in the data science area, including data scientists, MLOps engineers, and ML engineers.
Estimated immediate need at roughly 2 to 3 data science roles, and potentially 3 to 5 additional roles over the next 2 quarters as the organization shifts toward more AI-led operations.
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