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Experienced Full Stack Data Scientist – Ads Data Solutions Research at arenaflex

Remote · USA Full-time New today

At arenaflex, we're on a mission to revolutionize the way we understand and interact with our audiences. As a leader in the entertainment industry, we're constantly pushing the boundaries of innovation and creativity. Our team of data scientists plays a critical role in empowering decision-makers across the organization with actionable insights, predictions, and visualizations that drive business outcomes. We're seeking an experienced full stack data scientist to join our Ads Data Solution Research team, where you'll partner closely with cross-functional business stakeholders to develop and enhance models for tackling complex challenges. If you're a seasoned data professional with a passion for driving impact, we want to hear from you.

Job Summary:

As a lead data scientist, you'll be responsible for designing, building, and enhancing machine learning models that drive business outcomes. You'll work closely with engineering teams to develop and deploy models, collaborate with business stakeholders to identify opportunities, and drive experimentation to optimize model performance. If you're a seasoned data professional with a passion for driving impact, we want to hear from you.

Responsibilities:

* Design, build, and enhance machine learning models to drive business outcomes

  • Collaborate with engineering teams to develop and deploy models
  • Work closely with business stakeholders to identify opportunities and develop solutions
  • Drive experimentation to optimize model performance and identify areas for improvement
  • Develop and maintain complex data pipelines and architectures
  • Partner with data engineers to design and implement data infrastructure
  • Communicate complex technical concepts to both technical and non-technical audiences
  • Collaborate with cross-functional teams to drive business outcomes

Requirements:

* Master's degree in a quantitative field (e.g. Computer Science, Engineering, Mathematics, Physics, Operations Research, Econometrics, Statistics)

  • 7+ years of experience designing, building, and comparing realistic systems getting to know solutions
  • 7+ years of experience with statistical programming languages (e.g. Python, Spark, PySpark) and database languages (e.g. SQL)
  • Strong knowledge of machine learning algorithms and techniques
  • Experience with data visualization tools (e.g. Tableau, Looker)
  • Familiarity with Bayesian modeling and probabilistic programming applications (e.g. PyMC)
  • Experience with data exploration and data visualization tools (e.g. Tableau, Looker)
  • Familiarity with designing and reading A/B testing and other test types
  • Demonstrated skills in choosing the right statistical tools given a data analysis problem
  • Ability to adapt quickly in a fast-paced environment with shifting priorities
  • Strong communication skills, both technical and non-technical
  • Ability to manage multiple responsibilities simultaneously and in a timely manner

Nice-to-Haves:

* Doctorate's degree in a quantitative field

  • Excellent analytical skills, superior level of data knowledge
  • Strong knowledge of Python and libraries (e.g. sci-kit-learn, SciPy)
  • Familiarity with data structures and programs (e.g. Databricks, Jupyter, Snowflake, Airflow, Github)
  • Experience with data exploration and data visualization tools (e.g. Tableau, Looker)
  • Demonstrated management experience, including people and project management

What We Offer:

* Competitive salary range: $25-45/Hour

  • Opportunity to work with a leading entertainment company
  • Collaborative and dynamic work environment
  • Professional development and growth opportunities
  • Comprehensive benefits package
  • Flexible work arrangements, including remote work options

How to Apply:

If you're a seasoned data professional with a passion for driving impact, we want to hear from you. Please submit your resume and a cover letter explaining why you're the perfect fit for this role. Apply for this job

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