Data Scientist

5 - 9 years

14 - 17 Lacs

Posted:Just now| Platform: Naukri logo

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Work Mode

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Job Type

Full Time

Job Description

Position level:

AI Specialist/Software engineering professional

Work Experience:

Ideally, 4 to 5 years of working as a Data Scientist / Machine Learning and AI at a managerial position (end-to-end project responsibility). Slightly lower work experience can be considered based on the skill level of the candidate.

About the job:

Use AI-ML to work with data to predict process behaviors.Stay abreast of industry trends, emerging technologies, and best practices in data science, and provide recommendations for adopting innovative approaches within the product teams. In addition, championing a data-driven culture, promoting best practices, knowledge sharing, and collaborative problem-solving.

Abilities:

Knowledge about data analysis, Artificial Intelligence (AI), Machine Learning (ML), and preparation of test reports to show results of tests. Strong in communication with a collaborative attitude, not afraid to take responsibility and make decisions, open to new learning, and adapt. Experience with end-to-end process and used to make result presentation to customers.

Technical Requirements:

  • Experience working with real world messy data (time series, sensors, etc.)

  • Familiarity with Machine learning and statistical modelling

  • Ability to interpret model results in business context

  • Knowledge of Data preprocessing (feature engineering, outlier handling, etc

Soft Skill Requirements:

  • Analytical thinking Ability to connect results to business or process understanding

  • Communication skills Comfortable explaining complex topics to stakeholders

  • Structured problem solving Able to define and execute a structured way to reach results

  • Autonomous working style can drive a small project or parts of a project

Tool Knowledge:

Programming: Python (Common core libraries: pandas, numpy, scikit-learn, matplotlib, mlfow etc.)

Knowledge of best practices (PEP8, code structure, testing, etc.)

Code versioning (GIT)

Data Handling: SQL; Understanding of data format (CSV, JSON, Parquet); Familiarity with time series data handling

Infrastructure: Basic Cloud technology knowledge (Azure (preferred), AWS, GCP); Basic Knowledge of MLOps workflow

Good to have: Knowledge of Azure ML, AWS SageMaker; Knowledge of MLOps best practices in any tool; Containerization and deployment (Docker, Kubernetes)

Languages: English Proficient/Fluent

Location: Hybrid (WFO+WFH) + Availability to visit customer sites for meetings and work-related responsibilities as per the project requirement.

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