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Senior Manager, D&AI AIOps, MLOps Operations

PepsiCo
United Statesfull_timeVerifiedPosted 24 Mar 2025
💰 $198,800/yr($118,700/yr$198,800/yr)

About the role

Overview

We are seeking a highly skilled Senior Manager – AIOps & MLOps to lead and oversee the automation, scalability, and reliability of AI/ML operations across the enterprise.

Responsibilities

This role requires deep expertise in AI-driven observability, machine learning pipeline automation, cloud-based AI/ML platforms, and operational excellence. The ideal candidate will drive AI/ML model deployment, continuous monitoring, and self-healing automation to optimize system performance, minimize downtime, and enhance decision-making with real-time AI-driven insights.

  • Lead and sustain large-scale AIOps, MLOps programs, ensuring alignment with business objectives, data governance standards, and enterprise data strategy.
  • Oversee the implementation of real-time data observability, monitoring, and automation frameworks to enhance data reliability, quality, and operational efficiency.
  • Develop program governance models and execution roadmaps to drive efficiency across data platforms, including Azure, AWS, GCP, and on-prem environments.
  • Ensure seamless integration of CI/CD, data pipeline automation, and self-healing capabilities across the enterprise. Partner in building the next generation D&A platform(s), and leading a high-performing data operations team.
  • Lead and manage the full people, process and technology driven Data & Analytics platform technology strategy and cultural shift for PepsiCo IT to a world class data first organization working across all Sector S&T.
  • Champion of PepsiCo’s Data & Analytics program and platform management supporting large scale global data engineering efforts partnering across S&T organization
  • Support Data & Analytics Technology Transformations to provide full sustainment capabilities across the PepsiCo Data Estate, including data platform management automation of proactive issue identification and self-healing abilities.

AIOps & Observability Automation:

  • Design and implement AIOps strategies for automating IT operations using Azure Monitor, Azure Log Analytics, Azure Sentinel, and AI-driven alerting.
  • Deploy Azure-based observability solutions (Azure Monitor, Application Insights, Azure Synapse for log analytics, and Azure Data Explorer) to enhance real-time system performance monitoring.
  • Enable AI-driven anomaly detection and root cause analysis (RCA) using Azure Machine Learning (Azure ML) and AI-powered log analytics.
  • Develop self-healing and auto-remediation mechanisms using Azure Logic Apps, Azure Functions, and Power Automate to proactively resolve system issues.

MLOps & Machine Learning Pipeline Management:

  • Lead end-to-end ML lifecycle automation using Azure ML, Azure DevOps, and Azure Pipelines for ML (CI/CD).
  • Deploy scalable ML models with Azure Kubernetes Service (AKS), Azure Machine Learning Compute, and Azure Container Instances.
  • Automate feature engineering, model versioning, hyperparameter tuning, and drift detection using Azure ML Pipelines and MLflow.
  • Optimize ML workflows with Azure Data Factory, Azure Databricks, and Azure Synapse Analytics for data preparation and ETL/ELT automation.
  • Implement monitoring and explainability for ML models using Azure Responsible AI Dashboard, Fairlearn, and InterpretML.

Operational Excellence & Cross-Team Collaboration:

  • Partner with Data Science, DevOps, CloudOps, and SRE teams to align AIOps/MLOps strategies with enterprise IT goals.
  • Collaborate with business stakeholders and IT leadership to implement AI-driven insights and automation for improving operational decision-making.
  • Define and track AI/ML operational KPIs, including model accuracy, latency, infrastructure efficiency, and predictive maintenance metric.

Risk, Compliance & AI Governance:

  • Implement AI ethics, bias mitigation, and responsible AI practices for model governance in Azure Responsible AI Toolkits.
  • Ensure compliance with Azure Information Protection (AIP), Role-Based Access Control (RBAC), and data security policies.
  • Develop robust risk management strategies for AI-driven operational automation in Azure environments.
  • Present program updates, risk assessments, and AIOps, MLOps maturity progress to senior executives and key stakeholders.
  • Work collaboratively with wider PepsiCo colleagues to ensure your customer is delighted with their Azure cloud experience.
  • Attract and build a diverse, high-performing team with capabilities needed to achieve current and future business objectives.
  • Remove barriers to agility and enable the team to shift priorities quickly without losing productivity.
  • Develop the appropriate organizational structure, resource plans and culture to support the busine

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Company

PepsiCo

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