Machine Learning Engineer, Altice USA

Machine Learning Engineer, Altice USA

Company Altice USA
Job title Machine Learning Engineer
Job location Long Island City, NY, US
Type Full Time

Responsibilities:

  • Consult with stakeholders to gather business requirements, translate them into data solutions, design high-level model structures, and demonstrate deep expertise in advanced analytics techniques (e.g., AI and ML) to design, prototype, and build solutions to business problems
  • Lead communication with other stakeholders to drive use case development and manage expectations on model limitations and lead times
  • Analyze data to identify useful relations, patterns, and features that are predictive of user behaviors, preferences, intents, interests
  • Manage and execute entire projects from start to finish, including cross-functional project management; data collection and manipulation, analysis, and modeling; communication of insights and recommendations; productionalization of final model products
  • Share findings with stakeholders to improve business decisions and/or influence strategic direction.
  • Monitor and stay updated with industry trends and emerging technologies to identify opportunities for innovation and improvement
  • Developing and maintaining the end-to-end modeling code and standardizing the code for reusability in the production environment.
  • Profiling users including customer segmentation to help the marketing team target specific audiences for upgrading to services and also for user retention

Requirements & Skills:

  • Degree in a quantitative discipline, such as Data Science, Applied Mathematics, Statistics, Economics, Operations Research, Computer Science, Mathematics, Physics, Biology, Chemistry, or Engineering. An advanced degree, Data Science Bootcamp, or MOOC certification is a plus.
  • 3-5 years of work experience in classification, regression, clustering, natural language processing NLP, experiments, and optimization.
  • Ability to apply Bayesian inference, frequentist statistics, causal modeling, and/or machine learning techniques.
  • Experience with any of these: customer segmentation, campaign targeting, and effectiveness, A/B experiments, quasi-experiments, sales forecasting, churn propensity modeling, customer lifetime value analysis, credit risk, geospatial analytics, survey key drivers, marketing mix modeling, multi-touch attribution, or recommender systems.
  • Highly skilled in R and Python for statistical and machine learning programming.
  • Highly skilled in SQL & Python coding to wrangle and explore structured & unstructured data.
  • Proficient with server or Cloud computing platforms, such as Google Compute Engine or EC2.
  • Proficient with data warehouses, such as Oracle, Big Query, or AWS.
  • Subject matter scientists can review the literature to identify state-of-the-art solutions to a business problem.

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