
Senior Analyst, Data Science
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 Profile  | 
 · Previous experience in building data science based products is big advantage. · Experience in handling healthcare data is desired.  | 
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 Educational Qualification  | 
 • Bachelors / Masters in computer science or related subjects from reputable institution 
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 Typical Experience  | 
 • 3-5 years experience of industry experience in developing data science models and solutions. • Able to quickly pick up new programming languages, technologies, and frameworks • Strong understanding of data structures and algorithms • Ability to work in a start-up environment with a do it yourself attitude.  | 
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 Skill and Expertise  | 
 • Expert level proficiency in programming language Python/SQL. • Working knowledge of Relational SQL and NoSQL databases, including Postgres, Redshift • Exposure to open source tools & working on cloud platforms like AWS and Azure and being able to use their tools like Athena, Sagemaker, machine learning libraries is an added advantage • Exposure to big data processing technologies like Pyspark, SparkSQL added advantage • Exposure to AI tools LLM models Llama (ChatGPT, Bard) and prompt engineering is added advantage • Exposure to visualization tools like Tableau, PowerBI is an added advantage 
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 Primary Responsibility  | 
 · As a senior analyst the individual will be providing technical expertise to the team · Should be expert in all phases of model development (EDA, Hypothesis, Feature creation, Dimension reduction, Data set clean-up, Training models, Model selection, Validation and Deployment) · Is expected to participate and lead discussions during the solution design phase. · Should have deep understanding of statistical & machine learning methods ((logistic regression, SVM, decision tree, random forest, neural network), Regression (linear regression, decision tree, random forest, neural network), Classical optimisation (gradient descent etc), · Must have thorough mathematical knowledge of correlation/causation, classification, recommenders, probability, stochastic processes, NLP, and how to implement them to a business problem. · Expected to gain business understanding in health care domain order to come up with relevant analytics use cases. (E.g. HEOR / RWE / Survival modelling) · Familiarity with NLP, Sentiment analysis, text mining , data scraping solutions. - Experience with complex dashboarding and visualization using tools like tableau, Power BI etc  | 
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