Job Description

This capability is leveraged to fuel advanced Analytical solutions, Machine Learning and Deep Learning. It is also responsible for implementing and enhancing community of practice to determine the best practices, standards, and MLOps frameworks to efficiently delivery enterprise data solutions at General Mills.

This role works in close collaboration with Data Scientists, Data Engineers, Platform Engineers and Tech Expertise to support the analytic consumption needs. Enhances the performance of the models and automates the production pipelines to gain efficiency.

Role Responsibilities

Establish and Implement MLOps practices:

  • Development of end-to-end MLOps framework and Machine Learning Pipeline using GCP, Vertex AI and Software tools
  • Management of data pipelines including config, ingestion and transformation from multiple data source like Big Query, Dbt & Google cloud storage etc
  • Meta Data and statistics Data pipeline setup using GCP Bucket and MLMD
  • Re-Training and Monitoring Pipeline setup with multiple criteria Vertex AI
  • Serving Pipeline with multiple creation Vertex AI and GCP services
  • Resource and Infra Monitoring configuration and pipeline development using GCP
  • Automated pipeline Development for Continuous Integration (CI)/Continuous Deployment (CD) Continuous Monitoring (CM)/Continuous Training (CT) using GCP-native tool
  • Branching strategies and Version Control using GitHub
  • ML Pipeline orchestration and configuration using
  • DAG and Workflow orchestration using airflow/cloud
  • Code refactorization & coding best practices implementation as per industry standard
  • Technology-Stack suggestion based on 360 Deg
  • Implementing MLOps practices on project and follow the set MLOps
  • Support the ML models throughout the E2E MLOps lifecycle from development to maintenance

Architecture:

  • Micro Services Architecture and framework Development concept
  • Agile software Development concept
  • Architecture Design for HLD, LLD and Solution design

Team Mentoring:

  • Programming language Pattern Design implementation
  • Review projects PR and PBIs and suggestion for improvement
  • Knowledge sharing session with team for specific ML Ops
  • Guide/Mentor team members for MLOps framework development

Research, Evolve and Publish best practices:

  • Research and operationalize technology and processes necessary to scale ML Ops
  • Ability to research and recommend MLOps best practices on new technologies, platforms, and
  • MLOps pipeline improvement plan and suggestion

Communication and Collaboration:

  • Collaborate with technical teams like Data Science Lead, Data Scientist, Data Engineer and Platform
  • Knowledge sharing with the broader analytics team and stakeholders is
  • Communicate on the on-goings to embrace the remote and cross geography
  • Align on the key priorities and focus
  • Ability to communicate the accomplishments, failures, and risks in timely manner.

Embrace learning mindset:

  • Continually invest in your own knowledge and skillset through formal training, reading, and attending conferences and meetup

Documentation:

  • Document MLOps Process, Development, Architecture & Innovation etc and be instrumental in reviewing the same for other team members

Must - have technical skills and experience

  • Minimum qualification- Bachelor’s degree (Full Time)

  • Total Experience required 12-15 Years
  • Expertise and at least 3yrs of professional experience in MLOps E2E framework
  • Expertise in Data Transformation and Manipulation through Big-Query/SQL
  • Professional experience Vertex AI and GCP Services
  • Expertise in one of the programming Language Python/R
  • Airflow/Cloud composer Experience
  • Kubernetes/Kubeflow Experience
  • MLflow Professional experience
  • TFX Professional experience
  • Docker -container Experience
  • At least 5yrs of professional experience in the related field of Data Science
  • Strong communication skills both verbal and written including the ability to interacteffectively with colleagues of varying technical and non-technical
  • Passionate about agile software processes, data-driven development, reliability, and systematic

Good to have skills

  • GCP certification
  • Understanding of CPG industry
  • Bcsic understanding of dbt
  • AutoML Concept
  • Machine Learning -Concept of Algorithms
  • Deep Learning- Concept of Algorithms
  • Time Series Analysis- Concept of Algorithms

Company Info.

General Mills, Inc.

General Mills, Inc., is an American multinational manufacturer and marketer of branded consumer foods sold through retail stores. Founded on the banks of the Mississippi River at Saint Anthony Falls in Minneapolis, the company originally gained fame for being a large flour miller. Annie's Homegrown, Lärabar, Cascadian Farm, Betty Crocker, Yoplait, Nature Valley, Totino's, Pillsbury, Old El Paso, Häagen-Dazs, Cheerios, Chex, Lucky Charms, Trix.

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General Mills, Inc. is currently hiring Senior Machine Learning Engineer Jobs in Powai, Mumbai, Maharashtra, India with average base salary of ₹90,000 - ₹250,000 / Month.

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