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Infosys · Bengaluru East, Karnataka, India

Data Scientist -Machine learning

Hybridfull timePosted 7 days ago
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Stack mentioned

data-sciencemachine-learningpythonartificial-intelligencenumpypandasdeep-learningtensorflowpytorch

Technology->AI-Data science->Machine Learning,Technology->AI-Data science->PYTHON

Technical Delivery & Modeling

- Lead end-to-end data science and machine learning project execution from discovery to deployment-ready deliverables.

- Design, develop, and evaluate ML models aligned to business objectives, ensuring robust performance and generalization.

- Perform data exploration, feature engineering, and model selection to improve predictive accuracy and reliability.

- Establish model validation approaches, track metrics, and document assumptions, limitations, and outcomes. Consulting & Stakeholder Management

- Partner with stakeholders to translate business problems into analytical frameworks and measurable success criteria.

- Communicate insights and model results clearly to technical and non-technical audiences, enabling decision-making.

- Drive solution recommendations with a focus on feasibility, scalability, and business impact. Leadership & Quality

- Provide technical guidance and mentorship to team members, promoting strong engineering and modeling practices.

- Review code, experiments, and outputs to ensure quality, reproducibility, and maintainability.

- Contribute to reusable assets, templates, and best practices for consistent delivery across initiatives. Minimum Qualifications:

- UG education in Computers: BTECH / BSC / BCA (Computers must be included in UG).

- 5–8 years of experience in Data Science, Machine Learning, and AI/ML solution delivery.

- Strong hands-on experience with Python for data science workflows and model development.

- Proven ability to build, evaluate, and improve ML models using sound statistical and analytical techniques.

- Experience working with stakeholders to define problem statements, success metrics, and actionable outcomes.

- Experience leading teams or workstreams, including mentoring, technical reviews, and delivery ownership.

- Strong proficiency with Python data science ecosystem (e.g., NumPy, Pandas, scikit-learn) and experiment tracking practices.

- Exposure to deep learning or advanced ML techniques and frameworks (e.g., TensorFlow, PyTorch) where applicable.

- Ability to design scalable solution approaches and collaborate effectively in a hybrid work environment.

- Strong documentation and communication skills to present insights, trade-offs, and recommendations with clarity.

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