Sr Data Scientist

BioPharma Consulting JAD Group

Juncos (PR)

On-site

USD 120,000 - 180,000

Full time

8 hours ago
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Benefits offered by this job

6- month contract with extension
Administrative Shift

Job summary

BioPharma Consulting JAD Group seeks a Senior Data Scientist to drive advanced analytics initiatives across commercial insights, manufacturing, supply chain and digital teams. You will lead end-to-end data science projects, develop predictive models, and deliver measurable business value using ML, AI, and statistics.

You will build prototypes and scalable solutions with Python, SQL, and modern ML libraries, partnering with vendors and internal teams to translate requirements into actionable

Qualifications

  • PhD preferred or equivalent in data science, statistics, or related field.
  • Industry experience in biotech/pharma or regulated environments is a plus.
  • Strong background in ML, AI, and statistical modeling.

Responsibilities

  • Lead data science, ML, and AI capabilities across the organization.
  • Design and build predictive models and proofs of concept.
  • Query large datasets with SQL and related tools for analysis.
  • Apply statistics to processes, variability, capacity and performance.
  • Lead cross-functional analytics projects from concept to deployment.
  • Translate business needs into analytical solutions and tools.
  • Develop dashboards and visualizations to support decisions.
  • Ensure data governance, quality, and regulatory compliance.

Skills

Data science
Machine learning
Python
R
SAS
SQL
Statistics
Data visualization
Communication

Education

Doctorate
Master's degree
Bachelor's degree
Associate degree
High school/GED

Tools

Power BI
Smartsheet
Excel
JMP
Minitab
Spark
TensorFlow
Keras
PyTorch

Job description

The Senior Data Scientist leads advanced analytics initiatives and collaborates with cross‑functional partners—including commercial insights, manufacturing, supply chain, engineering, data teams, external vendors, service owners, and information systems—to develop analytical models and insights that solve complex business problems. This role drives end‑to‑end execution of data science projects, builds high‑impact analytical solutions, and delivers measurable business value through machine learning, artificial intelligence, and statistical modeling.

Key Responsibilities
  • Lead, design, and develop data science, machine learning, and AI capabilities across the organization
  • Build high‑performance algorithms, prototypes, predictive models, and proof‑of‑concepts using Python and modern ML libraries
  • Work with SQL and other database query languages to extract, transform, and analyze large datasets
  • Apply statistical and analytical techniques to evaluate process variability, performance trends, capacity, and operational efficiency
  • Lead cross‑functional analytics projects from concept to deployment with minimal supervision
  • Identify business needs, conduct SWOT analyses, propose analytical approaches, obtain stakeholder alignment, and execute solutions end‑to‑end
  • Manage multiple complex datasets, ensuring accuracy, consistency, and data integrity
  • Ensure compliance with regulatory, security, and privacy requirements related to data assets
  • Partner with manufacturing, supply chain, engineering, validation, quality, and digital/IS teams to develop methodologies that address specific business questions
  • Gather user requirements, translate business needs into analytical or digital tool specifications, and communicate findings clearly to technical and non‑technical stakeholders
  • Collaborate with external vendors and digital partners to support model development, automation, and system integration
  • Present analytical concepts, project progress, and results in a clear, compelling, and actionable manner
  • Create strong data‑driven narratives using PowerPoint, Excel, Power BI, Smartsheet, or similar visualization tools
  • Develop dashboards, reports, and visualizations to support decision‑making across operations
  • Support characterization, validation, and GMP‑related data evaluation activities
  • Apply statistical thinking to workload forecasting, resource planning, capacity modeling, and operational optimization
  • Support documentation practices, protocol/report development, discrepancy follow‑up, and compliance‑driven execution
Core Competencies & Skills
  • Strong foundation in data science, machine learning, and AI methodologies
  • Proficiency in Python, R, SAS, and ML libraries (scikit‑learn, TensorFlow, Keras, PyTorch, etc.)
  • Experience with relational, SQL, and graph databases
  • Ability to write clean, reusable, well‑abstracted code; comfortable working in Linux environments
  • Experience with distributed computing tools (Spark, Hive, etc.)
  • Excellent analytical, logical reasoning, and problem‑solving skills
  • Strong organizational and planning skills; ability to manage large datasets and multiple projects
  • Excellent communication skills with the ability to translate complex analysis into actionable insights
  • Passion for continuous learning and staying current with advanced analytics trends
  • Experience in biotech/pharma or regulated environments is a plus
Requirements
EDUCATION REQUIREMENTS
  • Doctorate, OR
  • Master's degree + 2 years of relevant experience, OR
  • Bachelor's degree + 4 years of relevant experience, OR
  • Associate degree + 8 years of relevant experience, OR
  • High school/GED + 10 years of relevant experience

Relevant fields include: Data Science, Statistics, Data Mining, Applied Mathematics, Business Analytics, Engineering, Computer Science, or related technical disciplines.

Preferred Qualifications
  • Strong data analytics and visualization skills using Excel, Power BI, Smartsheet, JMP, Minitab, or similar tools
  • Ability to collect, clean, organize, analyze, and interpret complex operational or manufacturing datasets
  • Experience with automation or digital tools (Python scripting, AI‑assisted coding, Power Automate, workflow development)
  • Understanding of basic statistics, process variability, trending, capacity evaluation, and performance monitoring
  • Experience supporting characterization, validation, or GMP‑related data evaluation
  • Familiarity with validation lifecycle activities, protocol/report development, documentation practices, data integrity, and compliance expectations
  • Strong stakeholder engagement skills; ability to gather requirements and communicate findings clearly to management and technical teams
  • Ability to work across manufacturing, engineering, quality, supply chain, and digital functions
Benefits
  • 6- month contract with possible extension
  • Administrative Shift
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