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Lead Site Reliability Engineer (AI/ML)

DevOps / SRE • Helyszíni • Teljes munkaidő Írország Dublin 18, Írország

Job Title:

Lead Site Reliability Engineer (AI/ML)

Overview:

As a Lead Site Reliability Engineer at Mastercard, you'll play a pivotal role focusing on the seamless deployment, operationalization, and continuous improvement of our AI/ML solutions. You'll be instrumental in translating AI models from development to production, ensuring they deliver tangible business value, operate efficiently, and meet key performance indicators.
Key Responsibilities
• Lead the E2E deployment and operationalization of AI/ML models and solutions, ensuring they are scalable, reliable, and integrated seamlessly into existing business processes
• Establish and maintain robust monitoring frameworks for deployed AI solutions. Proactively identify performance bottlenecks, data drifts, and other issues, and drive their resolution to ensure optimal business outcomes
• Work closely with business stakeholders, AI Engineers, and product teams to understand business requirements, define success metrics for AI solutions, and ensure deployed models are directly contributing to key business objectives
• Implement and champion MLOps best practices, automation strategies, and efficient workflows to streamline the deployment lifecycle of AI models, from experimentation to production
• Collaborate with risk, compliance, and governance teams to ensure all AI deployments adhere to internal policies, regulatory requirements, and ethical AI principles
• Lead the response to operational incidents related to deployed AI models, conducting root cause analysis and implementing preventative measures
Qualifications
• Education: Bachelor's degree in Computer Science, Engineering, Data Science, Business, or a related field
• Experience: Minimum of 8+ years of experience in AI/ML operations, MLOps, DevOps, or a related role with a strong focus on deploying and managing AI/ML solutions in production environments.
• Technical Skills:
o Solid understanding of the AI/ML lifecycle, from data preparation and model training to deployment and monitoring.
o Experience with one of the cloud platforms and their AI/ML services
o Proficiency in scripting and
o Familiarity with containerization technologies
o Knowledge of CI/CD pipelines for machine learning models.
o Experience with monitoring tools for AI/ML solutions
o Understanding of data governance, data quality, and data security principles relevant to AI/ML
• Strong ability to understand business needs, translate them into technical requirements for AI solutions, and articulate the business value of AI deployments
• Excellent communication, interpersonal, and stakeholder management skills
• Ability to effectively bridge the gap between technical and business teams
• Demonstrated ability to lead initiatives, drive cross-functional projects, and influence outcomes without direct authority
• Strong understanding of operational processes and a passion for optimizing them

To find US Salary Ranges, visit People Place. Under the Compensation tab, select "Salary Structures." Within the text of "Salary Structures," click on the link "salary structures 2025," through which you will be able to access the salary ranges for each Mastercard job family. For more information regarding US benefits, visit People Place and review the Benefits tab and the Time Off & Leave tab.

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