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Key skills for this role
The Global Knowledge Solutions (GKS) organization catalyzes the creation, transfer, and application of knowledge to ensure ITQ succeeds at its mission of driving internal and external innovation, developing differentiated technology, and engendering trust through food safety and quality.
The Data Scientist II in this program area is expected to: have deep expertise in Machine Learning, Deep Learning, and Agentic AI systems to drive high‐impact analytics and AI solutions. This role will focus on designing, building, and deploying intelligent, autonomous, and scalable AI systems that address complex business and R&D challenges; and manage multiple projects independently or with guidance. This role requires you to operate in 11.00 am to 8.00 pm shift.
KEY ACCOUNTABILITIES
Technical Excellence (70%)
AI Agent Building: Design AI agents leveraging LLMs, RAG, memory, tools, and orchestration frameworks. Implement multi‐step reasoning, task planning, and autonomous workflows using agentic architecture. Evaluate agent performance using custom evaluation metrics, simulators, and feedback loops. Stay current with emerging patterns in GenAI, autonomous agents, and AI safety.
End-to-End Model Development: Independently lead data science projects through the entire lifecycle: from problem definition and data acquisition to feature engineering, model selection, and deployment.
Predictive Modeling & Machine Learning: Design, build, and validate robust machine learning models (e.g., regression, classification, clustering, time-series forecasting) to solve key business challenges in R&D, product innovation, and quality.
Advanced Analytics & Insights: Apply statistical inference, data mining, and advanced analytical techniques to extract actionable insights from complex structured and unstructured data (e.g., text, sensor data).
Machie Learning Ops & Scalability: Build and maintain data and modeling pipelines. Deploy models into production environments and monitor their performance, ensuring scalability and reliability. Working experience on Computer-vision/Image analysis projects.
Technical Innovation: Stay current with advances in data science and machine learning. Evaluate and implement new tools, frameworks (e.g., PyTorch, TensorFlow, Keras, scikit-learn), and methodologies to enhance the team's capabilities.
Business Partnership (15%)
Work effectively with clients to identify client needs and success criteria, and translate into clear project objectives, timelines, and plans.
Be responsive and timely in sharing project updates, responding to client queries, and delivering on project commitments.
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Clearly communicate analysis, conclusions, insights, and conclusions to clients using written reports and real-time meetings.
Innovation & Continuous Improvement (10%)
Improve processes and methodologies
Develop new analytical capabilities
Continuously upskill in ML and AI best practices
Administration (5%)
Complete required trainings and organizational responsibilities
MINIMUM QUALIFICATIONS
Education: Master’s or Ph.D. in Data Science, Computer Science, Statistics, or related quantitative field
Experience: 5+ years building and deploying ML models and working experience on Agentic AI
Technical Skills: Strong ML expertise (feature engineering, validation, ensemble models, neural networks)
Proficiency in Python/R (pandas, NumPy, scikit-learn, etc.)
Experience with PyTorch, TensorFlow, Keras, or similar
Hands-on MLOps, Git, and cloud platforms (AWS/GCP/Azure)
Experience deploying production ML systems
Strong data storytelling and visualization skills (Shiny, Dash, Tableau)
Ability to manage multiple projects independently
PREFERRED QUALIFICATIONS
Certifications in R, Python, or SQL
ELIGIBILITY
Applicants must meet minimum age qualifications in the country in which the job is located.
The Global Knowledge Solutions (GKS) organization catalyzes the creation, transfer, and application of knowledge to ensure ITQ succeeds at its mission of driving internal and external innovation, developing differentiated technology, and engendering trust through food safety and quality.
The Data Scientist II in this program area is expected to: have deep expertise in Machine Learning, Deep Learning, and Agentic AI systems to drive high‐impact analytics and AI solutions. This role will focus on designing, building, and deploying intelligent, autonomous, and scalable AI systems that address complex business and R&D challenges; and manage multiple projects independently or with guidance. This role requires you to operate in 11.00 am to 8.00 pm shift.
KEY ACCOUNTABILITIES
Technical Excellence (70%)
AI Agent Building: Design AI agents leveraging LLMs, RAG, memory, tools, and orchestration frameworks. Implement multi‐step reasoning, task planning, and autonomous workflows using agentic architecture. Evaluate agent performance using custom evaluation metrics, simulators, and feedback loops. Stay current with emerging patterns in GenAI, autonomous agents, and AI safety.
End-to-End Model Development: Independently lead data science projects through the entire lifecycle: from problem definition and data acquisition to feature engineering, model selection, and deployment.
Predictive Modeling & Machine Learning: Design, build, and validate robust machine learning models (e.g., regression, classification, clustering, time-series forecasting) to solve key business challenges in R&D, product innovation, and quality.
Advanced Analytics & Insights: Apply statistical inference, data mining, and advanced analytical techniques to extract actionable insights from complex structured and unstructured data (e.g., text, sensor data).
Machie Learning Ops & Scalability: Build and maintain data and modeling pipelines. Deploy models into production environments and monitor their performance, ensuring scalability and reliability. Working experience on Computer-vision/Image analysis projects.
Technical Innovation: Stay current with advances in data science and machine learning. Evaluate and implement new tools, frameworks (e.g., PyTorch, TensorFlow, Keras, scikit-learn), and methodologies to enhance the team's capabilities.
Business Partnership (15%)
Work effectively with clients to identify client needs and success criteria, and translate into clear project objectives, timelines, and plans.
Be responsive and timely in sharing project updates, responding to client queries, and delivering on project commitments.
Clearly communicate analysis, conclusions, insights, and conclusions to clients using written reports and real-time meetings.
Innovation & Continuous Improvement (10%)
Improve processes and methodologies
Develop new analytical capabilities
Continuously upskill in ML and AI best practices
Administration (5%)
Complete required trainings and organizational responsibilities
MINIMUM QUALIFICATIONS
Education: Master’s or Ph.D. in Data Science, Computer Science, Statistics, or related quantitative field
Experience: 5+ years building and deploying ML models and working experience on Agentic AI
Technical Skills: Strong ML expertise (feature engineering, validation, ensemble models, neural networks)
Proficiency in Python/R (pandas, NumPy, scikit-learn, etc.)
Experience with PyTorch, TensorFlow, Keras, or similar
Hands-on MLOps, Git, and cloud platforms (AWS/GCP/Azure)
Experience deploying production ML systems
Strong data storytelling and visualization skills (Shiny, Dash, Tableau)
Ability to manage multiple projects independently
PREFERRED QUALIFICATIONS
Certifications in R, Python, or SQL
ELIGIBILITY
Applicants must meet minimum age qualifications in the country in which the job is located.
General Mills is a global food company with more than 100 brands sold in over 100 countries, including Cheerios, Nature Valley, Old El Paso, Annie’s and Blue Buffalo. Formally established in 1928 from milling businesses whose roots date to 1866, it produces cereals, snacks, meals, baking products and pet food.
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