Jobs · Engineering

Data Scientist

UL Solutions · Melville, NY · 1 wk ago
RemoteRemoteEngineering$80k–$120k/yrFull-time

Responsibilities

  • Process, cleanse, and verify the integrity, quality, and reliability of data used for analysis, reporting, and predictive modeling.
  • Perform ad-hoc and recurring analyses, presenting results and insights in a clear, concise manner to support business decision-making.
  • Analyze large, complex datasets to extract meaningful insights, selecting appropriate statistical, analytical, and machine learning techniques based on the problem context.
  • Select relevant features and build, evaluate, and optimize classification and predictive models using machine learning techniques.
  • Apply data mining and advanced analytical methods to identify trends, patterns, and relationships within structured and unstructured data.
  • Extend and enrich customer and business datasets using third-party data sources when required to improve analytical outcomes.
  • Enhance data collection and preparation procedures to ensure relevant, high-quality inputs for analytic and machine learning systems.
  • Use data modeling and evaluation strategies to identify patterns and accurately predict unseen or future instances.
  • Collaborate with business and technical stakeholders to align analytical solutions with business objectives.
  • Adhere to the Underwriters Laboratories Code of Conduct and follow all physical and digital security, data governance, and compliance practices.
  • Collaborate with business stakeholders to gather, analyze, and document requirements, translating needs into BRDs, user stories, and functional specifications.
  • Analyze large, complex datasets using statistical and analytical techniques to identify trends, patterns, and actionable insights.
  • Build and maintain dashboards, reports, and data visualizations using Power BI, Tableau, or similar tools.
  • Apply statistical methods and basic machine learning models to support forecasting, prediction, and business decision-making.
  • Perform ad-hoc and recurring analyses to support both operational reporting and strategic initiatives.
  • Process, cleanse, validate, and maintain data accuracy and integrity across analytical datasets.
  • Enhance data collection processes and integrate third-party data sources to improve analytical coverage and model performance.
  • Communicate analytical findings and recommendations clearly to both technical and non-technical audiences.
  • Partner with development teams using Azure DevOps to manage work items, track progress, and ensure timely delivery.
  • Support data science and analytics initiatives using SQL, Python, R, and Excel.
  • Collaborate with data engineering teams to support analytics pipelines and data lake initiatives.

Qualifications

  • Master’s degree in Data Science, Data Analytics, Computer Science, or related field
  • 3–5 years of experience in data analytics or data science roles
  • Strong proficiency in SQL, Python, and R
  • Experience with Power BI, Tableau, or similar visualization tools, including data modeling and DAX
  • Strong analytical and problem-solving skills with attention to detail
  • Experience gathering and documenting business requirements
  • Familiarity with Agile methodologies and Azure DevOps
  • Excellent communication, interpersonal, and stakeholder management skills
  • Understanding of statistical methods and probability theory

Preferred

  • Experience with machine learning frameworks such as scikit-learn, TensorFlow, or Keras
  • Experience with Salesforce data and reporting
  • Experience in business services or manufacturing industries
  • Familiarity with NLP or deep learning techniques

Benefits

  • Estimated salary range: $80,000 to $120,000
  • Annual bonus compensation with a target payout of 10% of the base salary
  • Health benefits: medical, dental, and vision
  • Wellness benefits: mental and financial health
  • Retirement savings (401K) commensurate with the standard rewards offered in each individual location or country
  • Paid time off: 15 days of vacation, 12 days of holiday including floating holidays, and 72 hours of sick time off

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