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Enlyft

Principal Data Scientist

Reposted 14 Days Ago
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In-Office
Pune, Mahārāshtra
Expert/Leader
In-Office
Pune, Mahārāshtra
Expert/Leader
The Principal Data Scientist will handle large datasets to develop machine learning models, evaluate performance, and optimize data infrastructure in collaboration with engineering teams.
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About Enlyft 

Data and AI are at the core of the Enlyft platform. We are looking for creative, customer and detail-obsessed machine learning engineers who can contribute to our strong engineering culture. Our big data engine indexes billions of structured / unstructured documents and leverages data science to accurately infer the footprint of thousands of technologies and products across millions of businesses worldwide. The complex and evolving relationships between products and companies form a technological graph that is core to our predictive modeling solutions. Our machine learning based models work by combining data from our customer's CRM with our proprietary technological graph and firmographic data, and reliably predict an account's propensity to buy.


About the Role

As part of our team, you'll be tasked with handling substantial datasets to develop machine learning models catering to our enterprise clients. Your role will also involve contributing to the development of foundational models for our product. To excel in this position, you should possess a strong analytical aptitude, with a deep understanding of data analysis, mathematics, and statistics. Critical thinking and problem-solving abilities are imperative for the interpretation of data. Furthermore, we value a genuine enthusiasm for machine learning and a commitment to research.


Responsibilities:

  • Develop and Deploy predictive models in production and conduct advanced analytics, data mining, and data visualization to influence strategic decisions
  • Architect and build data models to transform data into insights at scale
  • Evaluate model performance and conduct iterative model training to maximize predictive and forecast accuracy on an on-going basis.
  • Stay up to date with the latest advancements in AI/ML and GenAI, and drive innovation by evaluating new methodologies, architectures, and tools.
  • Optimize data infrastructure and implement MLOps best practices to automate training, monitoring, and deployment of ML models.
  • Collaborate with engineering teams to integrate AI models into production systems, ensuring scalability, security, and operational efficiency.

 

Requirements:

  • Bachelor or above degree in Computer Science, Applied Mathematics, Statistics, Econometrics, or related field
  • 10+ years of industry experience in data science, machine learning, & advanced analytics, with a proven track record of leading impactful projects.
  • Exceptional analytical and problem-solving skills, with the ability to break down complex business challenges into data-driven solutions.
  • Deep expertise in statistical modeling, machine learning, and predictive analytics, with hands-on experience deploying models at scale.
  • Strong programming skills in Python (or similar languages) and extensive experience with libraries such as pandas, numpy, scipy, and scikit-learn
  • Experience with big data frameworks like Spark and Databricks, including optimization for large-scale data processing.
  • Proficiency in working with large, high-dimensional datasets, integrating multiple data sources, and deriving meaningful insights.
  • Expertise in Generative AI (GenAI), including LLMs, transformer architectures (GPT, BERT, T5, etc.), and diffusion models (Good to have)
  • Experience with cloud platforms (AWS, Azure, or GCP) and working knowledge of ML model deployment (MLOps) and AI/ML lifecycle management
  • Proficiency in databases, including SQL (MySQL, SQL Server, PostgreSQL), NoSQL (MongoDB, Cassandra), or data warehouses (Snowflake, BigQuery, Redshift).
  • Strong leadership skills, with experience mentoring junior data scientists and collaborating cross-functionally with product, engineering, and business teams.
  • Ability to communicate technical concepts to non-technical stakeholders and drive data-informed decision-making across the organization

Top Skills

AWS
Azure
BigQuery
Cassandra
Databricks
GCP
MongoDB
MySQL
Numpy
Pandas
Postgres
Python
Redshift
Scikit-Learn
Scipy
Snowflake
Spark
SQL
SQL Server

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