We are seeking a seasoned Senior Data Scientist with a passion for turning complex data into actionable insights and deploying machine learning models that drive business value. You will work on cutting-edge projects, collaborate with cross-functional teams, and play a pivotal role in shaping our data strategy and analytics capabilities.
Key Responsibilities
Design, develop, and deploy robust machine learning models and data-driven solutions to solve real-world business problems.
Analyze large, complex datasets to extract meaningful patterns and insights that inform product and business decisions.
Collaborate closely with product managers, engineers, and stakeholders to define data requirements and deliver analytics solutions.
Develop, test, and maintain scalable ML pipelines and automate model deployment using MLOps best practices.
Lead end-to-end model lifecycle management including data preprocessing, feature engineering, model training, evaluation, and monitoring.
Create intuitive and impactful data visualizations and dashboards to communicate findings to both technical and non-technical audiences.
Mentor junior data scientists and analysts, fostering a culture of continuous learning and innovation.
Conduct rigorous statistical analyses and experimental designs to validate hypotheses and optimize product features.
Stay current with the latest advancements in data science, machine learning, and AI, recommending and implementing innovative techniques.
Ensure data integrity, quality, and security throughout the analytical process.
Required Qualifications & Skills
Masters or PhD in Computer Science, Statistics, Mathematics, or a related discipline.
5+ years of hands-on experience in data science, including deploying machine learning models into production environments.
Strong programming skills in Python and proficiency in SQL for data extraction and manipulation.
Deep expertise in ML frameworks such as scikit-learn, TensorFlow, PyTorch, and XGBoost.
Experience with data visualization tools like Tableau, Power BI, matplotlib, and Plotly to create compelling dashboards and reports.
Solid understanding of statistics, machine learning principles, experimental design, and hypothesis testing.
Proven experience with cloud platforms such as AWS, GCP, or Azure, including managing data and compute resources.
Familiarity with Git and version control workflows in a collaborative environment.
Practical knowledge of MLOps tools and methodologies such as MLflow, Kubeflow, Docker, and CI/CD pipelines.
Experience or interest in NLP, time series forecasting, or recommendation systems is a strong plus.
Understanding of big data technologies like Spark, Hive, and Presto is desirable.
Software Development Technology Information And Internet And Data Infrastructure And Analytics
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