Lead Data Scientist

MathCo

Bengaluru

On-site

INR 4,000,000 - 7,000,000

Full time

8 hours ago
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Job summary

MathCo invites a Lead Data Scientist - Pharma Analytics to lead client-facing analytics engagements and deliver advanced AI/ML solutions for global pharmaceutical clients.

The candidate will drive analytics delivery end-to-end, oversee a team of data scientists, mentor peers, and partner with Commercial, Marketing and Strategy teams to translate complex business problems into scalable, measurable insights.

Strong hands-on Python/SQL, cloud exposure, and pharma data experience are essential.

Qualifications

  • Mandatory Pharma Analytics experience.
  • Hands-on experience in Commercial Analytics.
  • Hands-on experience in Marketing Analytics.
  • Strong knowledge of Python, SQL, and ML concepts.
  • Experience with cloud platforms (AWS/Azure/GCP).
  • Familiarity with data sources like IQVIA, MMIT, HealthJump.

Responsibilities

  • Lead analytics projects from problem definition through deployment and impact measurement.
  • Develop predictive models and forecasting solutions; drive insights.
  • Mentor data scientists and conduct code reviews; ensure quality.
  • Engage with pharma marketing, brand, sales, and strategy teams.
  • Present insights to senior stakeholders and guide client decisions.

Skills

Python
SQL
Predictive Modeling
Statistics
Hypothesis Testing
Forecasting
Power BI
Cloud AWS/Azure/GCP

Education

Bachelor's or Master's in Statistics/Mathematics/CS/Engineering/Data Science/Analytics

Tools

IQVIA
MMIT
HealthJump
Databricks
Snowflake

Job description

We are hiring a Lead Data Scientist - Pharma Analytics to lead client-facing analytics engagements and deliver advanced AI/ML solutions for global pharmaceutical organizations.

The ideal candidate will possess deep expertise in Pharma Commercial Analytics, Marketing Analytics, Machine Learning, Advanced Analytics, and Data Science delivery, with strong hands-on experience in Python, SQL, Cloud technologies, and pharma datasets. The role requires balancing technical excellence, stakeholder management, and team leadership while translating complex business problems into scalable analytics solutions.

Key Responsibilities:
Analytics & Solution Delivery
  • Partner with business stakeholders and clients to understand business challenges and translate them into analytical solutions.
  • Design and deliver scalable data science and advanced analytics solutions.
  • Lead end-to-end analytics projects from problem definition through deployment and impact measurement.
  • Develop predictive models, forecasting solutions, machine learning algorithms, and optimization frameworks.
  • Drive insights generation through statistical modelling, machine learning, segmentation, forecasting, and performance analytics.
  • Present actionable recommendations and storytelling-driven insights to senior client stakeholders.
  • Lead, mentor, and develop a team of Data Scientists and Analysts.
  • Conduct technical solution reviews, code reviews, and mentoring sessions.
  • Drive adoption of best practices across Data Science, AI/ML, Cloud, GenAI, and Analytics delivery.
  • Ensure high-quality and timely project execution.
Client Engagement
  • Collaborate closely with Pharma Commercial, Marketing, Brand, Sales, Market Access, and Strategy teams.
  • Participate in solution design, capability building, proposal development, and client presentations.
  • Build strong relationships with senior stakeholders and act as a trusted analytics advisor.
Required Skills (Must Have):
Core Technical Skills
  • Advanced proficiency in Python
  • Advanced proficiency in SQL
  • Strong expertise in:
  • Predictive Modeling
  • Statistics
  • Hypothesis Testing
  • Forecasting
  • Power BI (Preferred)
  • Cloud exposure in at least one: AWS, Azure, GCP
Skill Mix 1: Commercial Pharma Analytics:

Mandatory Pharma Analytics Experience

Hands-on experience in one or more of:

  • Commercial Analytics
  • Market Analytics
  • Brand Analytics
  • Performance Analytics
  • Forecasting Analytics

Pharma Data Sources

Strong working knowledge of at least some of the following:

  • IQVIA
  • MMIT
  • HealthJump
  • Prescription Data
  • Claims Data

Preferred Use Cases

  • Territory Alignment
  • Commercial Performance Measurement
  • Incentive Compensation Analytics
  • Launch Analytics
  • Market Share Analytics
Skill Mix 2: Marketing Analytics & AI/ML:

Mandatory Pharma Marketing Analytics Experience

Strong experience in commercial and marketing analytics within pharmaceutical or life sciences organizations.

Marketing Analytics Expertise

Hands-on experience in one or more of:

  • Marketing Mix Modeling (MMM/MMX)
  • Multi-Touch Attribution (MTA)
  • Customer Journey Analytics
  • Next Best Action (NBA)

AI/ML Applications in Pharma

Experience in:

  • Predictive Analytics
  • Time Series Forecasting
  • Recommendation Engines
  • NLP Applications
  • Customer Analytics
  • GenAI Solutions
  • LLM-based Applications
Good to Have:
  • Generative AI and Agentic AI applications
  • NLP and LLM-based Analytics
  • Time Series Forecasting
  • MLOps
  • Databricks
  • Snowflake
  • Healthcare/Pharma Consulting experience
  • Experience working with global pharmaceutical clients
  • Exposure to advanced cloud-based ML deployments
  • Strong analytical and problem-solving mindset.
  • Ability to independently drive client conversations.
  • Experience mentoring and developing analytics teams.
  • Ability to manage multiple projects simultaneously.
  • Strong written and verbal communication skills.
  • Ability to influence senior stakeholders through data-driven recommendations.
Preferred Educational Qualification:
  • Bachelor's or Master's degree in: Statistics, Mathematics, Computer Science, Engineering, Data Science, Analytics
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