Machine Learning Engineer

Posted Yesterday
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2 Locations
Senior level
Fintech • Payments • Financial Services
The Role
The Senior ML/AI Engineer develops and deploys machine learning models and AI solutions, collaborating with teams to enhance business insights through predictive analytics.
Summary Generated by Built In

Let's Write Africa's Story Together!

Old Mutual is a firm believer in the African opportunity and our diverse talent reflects this.

Job Description

The Senior ML/AI Engineer will lead the design, development, and deployment of machine learning models and artificial intelligence solutions, focusing on solving complex business challenges through predictive analytics, natural language processing, and deep learning techniques.

The role involves collaborating closely with data scientists, data engineers, and business stakeholders to create scalable, production-grade ML/AI models that align with the organization's strategic goals. Additionally, the Senior ML/AI Engineer will drive innovation by exploring new AI methodologies, including large language models, and integrating them into data solutions for enhanced customer engagement and business insights.

Responsibilities

Machine Learning Model Development:

  • Build, train, and deploy advanced machine learning models, including regression, classification, clustering, and recommendation algorithms, that deliver business value.
  • Implement NLP, deep learning, and computer vision solutions as required to support customer-centric applications and predictive analytics.
  • Apply knowledge of large language models (LLMs) to develop conversational AI and recommendation systems for customer engagement.

AI System Design & Deployment:

  • Design end-to-end ML/AI pipelines that support the continuous integration and deployment of machine learning models into production environments.
  • Leverage MLOps best practices for model versioning, retraining, performance monitoring, and scalability.
  • Ensure models are optimized for latency, accuracy, and scalability by deploying on cloud platforms such as AWS, GCP, or Azure.

Data Gathering and Preprocessing:

  • Collaborate with data engineering teams to design and optimize ETL/ELT pipelines for AI-specific data needs.
  • Engineer and preprocess large, complex datasets from various sources to ensure model robustness, accuracy, and generalizability.
  • Contribute to the centralized data knowledge management system to streamline data access for ML/AI use cases.

Predictive Analytics & Foresight Generation:

  • Perform predictive analytics to support business strategies, creating foresight-driven models that enhance customer experiences and drive revenue growth.
  • Evaluate and implement techniques for model interpretability, explainability, and bias reduction.

Collaboration & Stakeholder Engagement:

  • Partner with business stakeholders to identify areas where ML/AI can drive value and translate these into actionable AI projects.
  • Work closely with data scientists, data engineers, and software development teams to ensure successful model deployment and alignment with data architecture.
  • Document processes, code, and models for knowledge sharing and team scalability.

Continuous Improvement & Research:

  • Stay updated on advancements in ML/AI, particularly LLMs and generative AI, and identify opportunities to apply these innovations to business problems.
  • Conduct ongoing model evaluation and improvement based on performance metrics, customer feedback, and evolving business needs.

Experience Requirements:

  • 5+ years of hands-on experience in machine learning, AI engineering, or data science, with a track record of successfully deploying models in production.
  • Extensive experience working with large datasets, building and fine-tuning ML models, and deploying on cloud platforms.
  • Demonstrated expertise in deep learning frameworks (e.g., TensorFlow, PyTorch) and familiarity with NLP and large language models.

Education:

  • Bachelor’s degree in Computer Science, Data Science, Statistics, Mathematics, or a related field.
  • Master’s or Ph.D. in Machine Learning, AI, or a similar field is strongly preferred for a senior role.

Preferred Technical Skills:

  • Proficiency in Python and ML libraries (e.g., scikit-learn, Keras, Hugging Face).
  • Strong experience in cloud-based ML services (e.g., AWS SageMaker, GCP AI Platform, Azure ML).
  • Knowledge of MLOps tools and practices (e.g., MLflow, Airflow, Docker, Kubernetes).

Skills

Action Planning, Business Requirements Analysis, Computer Literacy, Database Administration, Database Reporting, Data Compilation, Data Controls, Data Management, Data Modeling, Executing Plans, Gaps Analysis, Information Technology (IT) Support, IT Architecture, IT Implementation, IT Network Security, Market Analysis, Test Case Management, User Requirements Documentation

Competencies

Action OrientedBusiness InsightCultivates InnovationDrives ResultsEnsures AccountabilityManages ComplexityOptimizes Work ProcessesPersuades

Education

NQF Level 9 – Masters

Closing Date

29 April 2025 , 23:59

The appointment will be made from the designated group in line with the Employment Equity Plan of Old Mutual South Africa and the specific business unit in question.

The Old Mutual Story!

Top Skills

Airflow
AWS
Azure
Docker
GCP
Keras
Kubernetes
Mlflow
Python
PyTorch
Scikit-Learn
TensorFlow
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The Company
Gauteng
12,448 Employees
On-site Workplace

What We Do

Old Mutual Limited is a listed company on the Johannesburg Stock Exchange and has secondary listings on the London, Malawi, Namibia and Zimbabwe stock exchanges. As a Pan-African financial services company, we are focused on Africa, her needs and her people.

Together with you, we have educated our children, given more homes warmth and light, empowered small businesses and improved infrastructure in Africa. Our story will continue #WithAfricaForAfrica

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