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ProcDNA

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[India] Lead - Data Scientist

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About ProcDNA

ProcDNA is a global consulting firm. We fuse design thinking with cutting-edge tech to create game-changing Commercial Analytics and Technology solutions for our clients. We're a passionate team of 470+ across 9 offices, all growing and learning together since our launch during the pandemic. Here, you won't be stuck in a cubicle. Instead, you'll be out in the open water, shaping the future with brilliant minds. Ready to join our epic growth journey?

What are we looking for

We are looking for a Lead Data Scientist who can own data science engagements end to end, from shaping the problem with the client to delivering and operationalizing ML solutions. You will lead a team of data scientists, guide technical decisions, and help grow ProcDNA's data science practice through client relationships and new capabilities.

What you'll do:

  • Work with clients to translate business questions into well-scoped data science problems, and define the approach, data requirements and success measures.
  • Design and oversee ML solutions across the pharma commercial lifecycle, and choose methods that fit the data and the decision they support.
  • Own client communication and relationships and provide thought leadership to support their business decisions.
  • Quality-check the team's work and guide models to production through cross-team collaboration.
  • Lead project delivery across timelines, scope and team allocation, often across parallel engagements.
  • Mentor and manage a team of data scientists, and keep yourself and the team current with advancements in the field for collective growth.
  • Contribute to business development and internal capability building through proposals, POCs and reusable offerings, and help the practice grow

Must have:

  • 5.5+ years of hands-on experience in data science and ML, with at least 2 years leading projects or teams in a pharma consulting or client-facing setting.
  • A Bachelor's or Master's degree in engineering, statistics, mathematics or a relevant quantitative field.
  • Experience with life sciences data, such as claims (Komodo, IQVIA, Symphony), specialty pharmacy, CRM, DDD, Lab and other HCP, account or patient-level data.
  • Strong depth in Statistics, supervised and unsupervised ML, Deep learning and GenAI concepts, along with experience in deploying models to production.
  • Strong Python and SQL, with experience on distributed or cloud platforms such as Databricks, PySpark and AWS/Azure.
  • A track record of owning client communication and explaining results to non-technical stakeholders.
  • Experience in guiding and managing a team of data scientists.

Skills

See also

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