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Job Description

Build and operationalize AI with Procter & Gamble in a hybrid role based in Cincinnati, OH. You’ll embed machine learning pipelines on Google Cloud Platform, work across multi-cloud services, and help production teams scale analytics and AI capabilities through reliable deployments, testing, and platform engineering.

Compensation: USD 85,000 - 122,200 per year. P&G total rewards include salary + bonus (if applicable) + benefits, with final range and details depending on role, location, credentials, skills, and experience.
Immigration: Immigration Sponsorship is not available for this role. P&G participates in E-Verify as required by law.

What you’ll do

  • Collaborate with Data Scientists, Analysts, peer AI Engineers to deliver advanced analytics solutions through proof of concepts and experiments.
  • Prepare data models, establish quality checks, and optimize analytical solutions for scale.
  • Design and build applications that pull data from multiple systems, with development in Python and SQL.
  • Support solutions across Azure (Databricks, Azure ML, AKS, ADF) and/or GCP (Composer, BigQuery, GKE, Kubeflow).
  • Operate with DevOps practices and Agile workflows (Jira), using CI/CD via GitHub Actions to improve code reuse and design patterns from internal libraries.
  • Operationalize Machine Learning models as an integral part of IT solutions and business processes.
  • Apply Platform Engineering practices so cloud infrastructure is effectively “invisible” to data scientists and model developers.
  • Troubleshoot infrastructure issues to keep critical AI products running, including incident detection driven by multiple datasets and real-time data stream analysis.
  • Develop prototypes or proof of concepts for new features, propose architecture improvements, and strengthen AI Engineering DevOps practices through coaching or teaching others.

Required qualifications

  • Bachelor’s or Master’s degree in Computer Science, Software Engineering, or a related field.
  • 2+ years of proven experience with Python & SQL, including data modeling, and development and deployment of Data and Analytics products.
  • Ability to work a hybrid schedule in Cincinnati, OH.

Preferred experience

  • Experience with Agile, CI/CD, and DevOps methodologies, including tools such as Jira and GitHub Actions.
  • Testing and engineering practices such as PyTest and mocking, plus static code analysis (e.g., Sonarqube) and source control using GitHub.
  • Cloud infrastructure knowledge for GCP and/or Azure, including load balancing, autoscaling, firewalls, and authentication.
  • Experience with AI/ML products, model pipelines, and deployment processes.
  • Logging and monitoring technologies.
  • Strong written and verbal communication in English.
  • Problem solving skills in complex cloud environments.

Technologies: Python, SQL, Google Cloud Platform, BigQuery, Kubeflow, Azure, Databricks, Azure ML, AKS, ADF, Composer, GKE, DevOps, Agile, Jira, CI/CD, GitHub Actions, Machine Learning, Artificial Intelligence, PyTest, Sonarqube, GitHub, load balancing, autoscaling, firewalls, authentication, logging, monitoring, real-time data stream analyses.

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