42 AI Testing jobs in South Africa
Lead: Software Testing
Posted today
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*Apply By *
:
We're on the lookout for energetic, self-motivated individuals who share our passion for service in the banking industry. To be part of the journey, follow the steps below:
- To see what life at Capitec is all about and complete a short assessment, please click here
- Once you have completed the above finalize your application by clicking apply below
Join Us in Becoming the Best Bank in the World
We appoint energised and motivated people for their potential and we continuously look for talented, driven individuals to help us innovate and evolve. That is why we focus on finding the right people for the right jobs. We love what we do, because we focus on making a positive difference for our clients and employees. Our company DNA is built around talented and committed teams dedicated to build a brand that we are proud of and that earns the trust of our clients.
*Who We Are *
We are a bank, but we're much more than that. We believe that banking is about enabling people to control their financial lives through banking that is simplified, accessible, affordable, and delivered through personal experience. By helping our clients better manage their financial lives, we enable them to live better.
Why Choose Us
At Capitec, we offer our best by living up to our CEO values in every situation – we always put the Client first, act with Energy, and take Ownership. And, to support people in being their best, our Employee Value Proposition offers every value to all team members through cohesive teams, growth opportunities, as well as employee benefits and savings. We make it a priority to ensure that each member of the Capitec team feels welcome, valued, focused, and has the opportunity to grow.
*PURPOSE STATEMENT *
- To drive testing excellence within the product line by managing and overseeing the end-to-end testing process, and optimising testing processes through central and digital test automation practices.
- To develop and implement a comprehensive testing vision and quality roadmap that aligns with organisational goals.
- To ensure the continuity of the testing capability by crafting testing career paths and development paths for testers, including structured training programs and succession planning.
- To provide technical leadership for automation frameworks, while fostering a culture of quality across the organisation.
- The successful incumbent will be expected to have: the ability to work in a fast-paced and collaborative environment; strong ethical standards and professional integrity; and commitment to continuous learning and remaining current with industry trends.
*KEY RESPONSIBILITIES:
Strategic Leadership: *
- Develop and implement testing vision and strategy aligned with business objectives.
- Create and maintain quality roadmap for continuous improvement.
- Lead innovation in testing methodologies while defining and enforcing best practices.
- Drive cross-team quality initiatives and cultivate strong partnerships with stakeholders.
- Stay current with industry trends and contribute to the broader testing community.
*Technical Excellence And Development: *
- Make critical architecture decisions for end-to-end test automation frameworks using JavaScript / Typescript.
- Lead implementation of Playwright-based testing solutions and BrowserStack integration.
- Design and implement scalable, maintainable end-to-end automation solutions across modern tech stacks.
- Drive innovation in testing methodologies through custom JavaScript / TypeScript tool development.
- Code review and mentor team members on JavaScript / TypeScript and modern testing best practices.
- Integrate end-to-end automated testing into CI/CD pipelines and DevOps practices.
- Develop comprehensive test strategies covering web applications, mobile apps, and API layers.
- Establish testing standards for modern technologies.
*Business Value And Quality Assurance (QA): *
- Establish meaningful quality metrics and demonstrate ROI from testing efforts.
- Design effective risk mitigation strategies to protect business value.
- Ensure comprehensive QA testing including identifying test conditions, creating test plans and test cases / scripts from project documentation.
- Drive organisational impact through quality culture development.
- Manage release processes and ensure testing integration within SDLC.
* *Qualifications (Minimum)***
- Bachelor's Degree
- Grade 12 National Certificate / Vocational
* *Qualifications (Ideal Or Preferred)***
- Bachelor's Degree in Information Technology - Computer Science or Information Management
* *EXPERIENCE*
*Minimum:
- 5+ years' experience in QA testing (identifying test conditions, creating test plans and test cases / scripts from project documentation)
- Extensive hands-on experience in test automation development using JavaScript / TypeScript
- Strong programming background with proficiency in JavaScript / TypeScript (JavaScript / TypeScript programming and modern development patterns)
- Developing and maintaining end-to-end automated test frameworks from scratch (end-to-end test architecture and framework design)
- Solid understanding of modern web technologies and end-to-end testing across various technology stacks (modern web technology stack testing expertise)
- Complex problem-solving in end-to-end scenarios
- Deep understanding of software development principles, design patterns, and clean code practices in JavaScript / TypeScript
- Stakeholder management and strategic influence
*Ideal: *
- 5+ years' experience in Managing / Leading / coordinating a technical team and/or the work of Testing roles throughout the various testing phases and activities (technical leadership and team management)
- 3+ years' Bank IT system exposure
- Advanced end-to-end test automation framework development using Playwright with JavaScript / TypeScript
- Expert-level experience with BrowserStack for cross-browser and native mobile app testing
- Native mobile app testing experience with tools like Appium integrated with BrowserStack
- Testing microservices, APIs, and distributed systems architectures
- CI/CD pipeline integration with end-to-end test automation suites
- Cloud-based testing solutions and modern deployment practices
- Release management exposure
*KNOWLEDGE
Minimum:
A detailed understanding of: *
- The full IT project lifecycle (SDLC) and how the Software Testing Life Cycle (STLC) fits into it
- Advanced JavaScript / TypeScript programming OR any other major programming language (Async / Await, and modern patterns, etc.)
- End-to-end testing methodologies and strategies across various technology stacks
- Back End Testing using JavaScript-based tools and frameworks
- Git version control, branching strategies, and collaborative modern development workflows
- CI/CD pipeline integration with GitHub actions
- Agile methodology and modern development practices
- Database interactions using JavaScript against MSSQL / Postgres
- API interactions using JavaScript
*Ideal:
A basic understanding of: *
- Playwright framework for end-to end automation - web automation and cross-browser testing
- BrowserStack platform for cloud-based testing and native mobile app testing ( BrowserStack integration for cross-platform testing )
- Bank IT-related systems and infrastructure
- Advanced JavaScript / TypeScript patterns and performance optimisation
- Native mobile app testing with Appium and BrowserStack Device Cloud
- Performance testing with JavaScript-based tools
- Visual regression testing and accessibility testing automation
- Docker containerisation for consistent testing environments
- Strategic planning and business alignment
* *SKILLS***
- Analytical Skills
- Problem solving skills
- Communications Skills
- Interpersonal & Relationship management Skills
- Planning, organising and coordination skills
- Change Management Skills
- Strategic Thinking Skills
*CONDITIONS OF EMPLOYMENT *
- Clear criminal and credit record
Capitec is committed to diversity and, where feasible, all appointments will support the achievement of our employment equity goals.
Machine Learning
Posted 10 days ago
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A specialised AI consulting firm is seeking a Machine Learning Engineer to join our team. This role offers the opportunity to work on high-impact AI initiatives within the banking sector , where you will play a key part in designing, deploying, and scaling advanced machine learning solutions. You’ll collaborate with data scientists, engineers, and business stakeholders to deliver end-to-end AI systems that enhance decision-making, improve customer experiences, and optimise critical processes. Beyond building models, you’ll be responsible for ensuring their performance, reliability, and scalability in production—using modern cloud platforms and MLOps practices.
Responsibilities:
- Design, build, and optimise machine learning models for banking applications.
- Implement scalable ML pipelines and integrate them into production environments.
- Collaborate with data scientists, data engineers, and business stakeholders to deliver end-to-end AI solutions.
- Deploy, monitor, and maintain ML models in AWS environments .
- Ensure model reliability, reproducibility, and performance throughout the lifecycle.
- Document methodologies, workflows, and best practices.
Qualifications and experience:
- 3–5 years of experience in machine learning, data science, or related field.
- Strong proficiency in Python and ML frameworks (TensorFlow, PyTorch, Scikit-learn).
- Experience with large datasets and SQL/NoSQL databases .
- Essential: Hands-on experience with AWS cloud services (SageMaker, S3, Lambda, EC2, Glue, Redshift).
- Familiarity with MLOps practices and CI/CD for ML pipelines.
- Strong problem-solving ability with a track record of translating business needs into technical solutions.
- Experience in banking or financial services is advantageous, but not required.
- Proven experience taking AI models into production at scale .
- Exposure to containerisation (Docker, Kubernetes).
- Familiarity with ML model monitoring and observability tools.
The reference number for this position is NG60802 which is a contract position in Johannesburg/Cape Town offering a contract rate of R550 to R750 per hour, salary negotiable based on experience. e-mail Nokuthula on or call her for a chat on to discuss this and other opportunities.
Are you ready for a change of scenery? E-Merge IT recruitment is a niche recruitment agency. We offer our candidates options so that we can successfully place the right people with the right companies, in the right roles. Check out the E-Merge IT website for more great positions.
Do you have a friend who is a developer or technology specialist? We pay cash for successful referrals!
Machine Learning Scientist
Posted 27 days ago
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Youll work with LLMs, RAG frameworks, and scalable data pipelines , collaborate with DevOps and product teams, and be part of a culture that values experimentation, innovation, and continuous learning.
Whats In It For You?:
- Exposure to the latest AI tools and frameworks (LangChain, Llama-Index, and Vector Databases).
- Opportunity to deploy real-world GenAI solutions that drive tangible business outcomes.
- Collaborative, forward-thinking environment where your input shapes strategy.
- Commitment to equity and inclusion African and Coloured candidates are strongly encouraged to apply.
Key Responsibilities:
- Design, implement, and optimize Generative AI solutions and RAG frameworks.
- Develop scalable data pipelines, perform ETL, and design dimensional models for optimal data storage.
- Deploy, monitor, and optimize AI models for performance, scalability, and cost efficiency.
- Collaborate with cross-functional teams to align solutions with business goals.
- Communicate complex AI concepts clearly to non-technical stakeholders.
- Stay ahead of the curve by researching and experimenting with new AI architectures and techniques.
Job Experience and Skills Required:
- Education: Bachelors Degree in Computer Science, Data Science, Machine Learning, or a related field (Masters/PhD preferred).
- Experience: 3+ years in AI/ML, with at least 12 years specialising in Generative AI.
- Technical Skills:
- Proficiency in Python, SQL, Pandas, and NumPy.
- Experience with deep learning frameworks (TensorFlow and PyTorch) and LLM tools (LangChain and Llama-Index).
- Cloud platforms (AWS, GCP, and Azure) and containerization (Docker and Kubernetes).
- Strong data engineering skills (ETL, pipeline design, and data modelling).
- Knowledge of MLOps practices for model versioning, monitoring, and retraining.
- Soft Skills: Proactive, curious, collaborative, and strong communicator.
- Preferred Certifications: AWS ML Specialty, GCP ML Engineer, Azure AI Engineer, or similar.
Apply now!
For more exciting Finance and Tech vacancies, please visit:
Machine Learning Engineer
Posted today
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Job Description
About talent match africa (tma)
talent match africa
is on a mission to unlock Africa's potential by connecting exceptional talent with organizations that are shaping the future. We don't just match skills to roles - we match people to possibilities. With a strong network across industries and a people-first approach, we help companies thrive while empowering professionals to build meaningful careers.
About this role
As a
Machine Learning Engineer
, you'll go beyond writing code to solving real-world problems with data. This role is about designing intelligent systems that learn and improve, tackling complex challenges that demand both creativity and technical depth. You'll thrive in collaboration, bringing ideas to life alongside a dynamic team.
What You'll Do
- Design, build, and deploy machine learning models and algorithms
- Develop scalable data pipelines for model training and inference
- Optimize models for performance and efficiency
- Collaborate with data scientists to bring research into production
- Monitor and maintain ML models in live environments
- Implement A/B testing frameworks to validate models
- Work with large-scale datasets and distributed computing systems
- Maintain and enhance existing ML systems
What We're Looking For
Required
- 3+ years of experience in machine learning and software development
- Proficiency in Python, R, or Scala
- Hands-on experience with ML frameworks (TensorFlow, PyTorch, Scikit-learn)
- Familiarity with cloud platforms (AWS, GCP, Azure)
- Strong understanding of statistics and mathematics
- Experience with version control and software engineering best practices
Preferred
- Exposure to MLOps tools and practices
- Knowledge of containerization (Docker, Kubernetes)
- Experience building real-time inference systems
Why tma?
At
talent match africa
, you're not just taking on a job, you're joining a movement. You'll work with innovative teams, get exposure to impactful projects, and be part of an ecosystem that's redefining how Africa connects to opportunities.
Machine Learning Engineer
Posted today
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The role of the Specialist Machine Learning Engineer encompasses many activities, including (but not limited to):
- Focusing on niche areas of machine learning, such as natural language processing, computer vision, or reinforcement learning.
- Developing domain-specific ML models tailored to specialized business needs.
- Conducting in-depth research and prototyping innovative solutions using advanced ML techniques.
- Identifying opportunities to apply cutting-edge machine learning advancements to improve processes or create new capabilities.
- Collaborating with other Engineers to transfer research findings into scalable, production-ready solutions.
- Providing expert insights on specific tools, frameworks, or algorithms, ensuring the organization stays ahead in ML innovation.
- Contributing to the development of internal ML tools and libraries to streamline workflows.
Minimum Qualification:
- NQF 6 or higher tertiary qualification in Information Communication Technology (ICT) field incorporating (but not limited to) Information Systems; Cloud certification.
Minimum Experience:
- Minimum of 6 years' experience in a field of a Machine Learning Engineer role.
Machine Learning Engineer
Posted today
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This 12-month remote contract role places you on an international machine learning project through Dijkstrack for one of our global technology partners. You'll work within a distributed engineering team to design, train, and deploy ML models using modern frameworks like PyTorch. Dijkstrack engineers enjoy access to technical community support, structured delivery processes, and the opportunity to embed within long-term global product teams.
Key Duties & Responsibilities- Design, train, and deploy machine learning and deep learning models using PyTorch
- Build and maintain ML pipelines, model training workflows, and data processing components
- Work with product and engineering teams to integrate models into production systems
- Analyse datasets, performance metrics, and optimise models for accuracy and efficiency
- Implement MLOps best practices for model versioning, deployment, and monitoring
- Document models, datasets, evaluations, and maintain reproducibility standards
- Participate in code reviews and uphold engineering quality in ML codebases
- Strong proficiency in Python for ML development
- Hands-on experience with PyTorch (TensorFlow experience also welcome)
- Solid understanding of machine learning fundamentals, model architectures, training loops
- Ability to work with large datasets, ETL pipelines, and model optimisation
- Familiarity with Git workflows, remote collaboration, and agile delivery models
- Experience with ML Ops tools like MLflow, Weights & Biases, SageMaker, or similar
- Exposure to cloud-based ML deployments (AWS, Azure, GCP)
- Knowledge of microservice integration for ML models
- Prior work in AI product teams or international ML research environments
- Join a network of engineers delivering advanced ML solutions internationally
- Technical community of senior engineers across data, backend, and product domains
- Remote-first culture, global exposure, and structured technical delivery support
Machine Learning Engineer
Posted today
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Contract
Experience3 to 15 years
SalaryNegotiable
Job Published16 October 2025
Job Reference No.Job Description
PBT Group is seeking a highly skilled Machine Learning Engineer to design, build, and deploy scalable machine learning solutions across complex data environments. The successful candidate will work closely with data scientists, data engineers, and business stakeholders to operationalise machine learning models, optimise data pipelines, and contribute to the continuous improvement of advanced analytics solutions.
This role requires a blend of strong data engineering expertise, applied machine learning knowledge, and cloud-based solution experience.
Key Responsibilities
- Design, develop, and deploy machine learning models into production environments.
- Build and maintain end-to-end ML pipelines for data ingestion, transformation, feature engineering, model training, and inference.
- Collaborate with data scientists to move models from experimentation to production.
- Optimise model performance and ensure scalability, reliability, and monitoring of ML systems.
- Implement MLOps best practices, including CI/CD automation, version control, model tracking, and reproducibility.
- Work with data engineers to ensure robust data quality, governance, and accessibility.
- Research and experiment with emerging AI/ML techniques and tools to enhance capabilities.
- Document processes and provide technical guidance to cross-functional teams.
Technical Skills & Experience
- Programming: Strong proficiency in Python (NumPy, Pandas, Scikit-learn, TensorFlow, PyTorch).
- ML Lifecycle Management: Experience with MLflow, Kubeflow, SageMaker, or similar platforms.
- Data Pipelines: Solid understanding of ETL/ELT processes and tools such as Airflow, Spark, or Databricks.
- Cloud Platforms: Hands-on experience with AWS, Azure, or GCP (data and AI services).
- Databases: Strong SQL skills and experience with both relational and NoSQL data stores.
- Model Deployment: Experience deploying ML models via APIs, containers (Docker, Kubernetes), or cloud endpoints.
- Version Control & CI/CD: Git, Jenkins, or GitHub Actions.
- Bonus: Exposure to Deep Learning, NLP, or Computer Vision frameworks.
Soft Skills
- Strong problem-solving and analytical skills.
- Excellent communication and collaboration with both technical and business stakeholders.
- Proactive and curious mindset, with the ability to learn and adapt quickly.
- Strong documentation and presentation abilities.
Minimum Qualifications
- Bachelor's or Master's degree in Computer Science, Data Science, Statistics, Applied Mathematics, or a related field.
- 3+ years of experience in applied machine learning or AI solution development.
Proven track record of delivering production-ready ML models in real-world environments.
In order to comply with the POPI Act, for future career opportunities, we require your permission to maintain your personal details on our database. By completing and returning this form you give PBT your consent
If you have not received any feedback after 2 weeks, please consider you application as unsuccessful.
Data ScienceMachine LearningSQLPythonExtract Transform Load (ETL)Spark MLArtificial Intelligence
IndustriesBankingFinanceInsurance
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Machine Learning Engineer
Posted today
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Purpose of the Role
The Machine Learning Engineer is responsible for
deploying, monitoring, and maintaining ML models in production
. They turn prototype models into scalable, production-grade systems by building automated pipelines, integrating with infrastructure, and ensuring data and model quality. They work closely with Data Scientists, Data Engineers, and MLOps Support to ensure models are reliable, performant, and aligned with business objectives.
Key Responsibilities1. Model Deployment & Pipeline Automation
- Translate models from notebooks to reusable, production-grade code.
- Build CI/CD pipelines for ML (unit tests, integration tests, automated deployment).
- Manage versioning of code, data, and models (e.g., Git, DVC).
2. Monitoring, Scaling & Performance
- Monitor live models for drift, latency, and failure.
- Tune models and pipelines for performance and cost-efficiency.
- Implement load testing and alerting (Prometheus, Grafana, Azure Monitor).
3. Data Integration & Governance
- Collaborate with Data Engineers to manage feature pipelines and real-time data flow.
- Ensure training/inference data meets governance and compliance requirements.
- Implement Feature Store solutions where relevant (e.g., Azure Feature Store).
4. Documentation & Support Enablement
- Provide clear documentation for handover to MLOps support.
- Define IAM roles and controls for model access across dev/test/prod.
- Lead training or walkthroughs for deployment best practices.
5. Continuous Improvement
- Automate repetitive tasks (testing, retraining, rollback triggers).
- Introduce modern techniques like streaming inference, canary deployments, or serverless ML.
- Participate in post-mortems and incident reviews to strengthen MLOps maturity.
Required Skills & Experience
Education
- Bachelor's degree in Computer Science, Data Science, Engineering, or similar.
- Master's degree preferred.
Experience
Intermediate
2–3 yrs Deploy models, build basic CI/CD, script pipelines
Senior
4+ yrs Scale production ML, lead infra design, mentor others
Technical Skills
- Languages
: Python (required), PySpark, SQL. - Cloud
: Azure ML stack (Azure ML, DevOps, Feature Store). - CI/CD
: Git, Jenkins, Azure Pipelines. - Monitoring
: Azure Monitor, Prometheus, Grafana. - Data Tools
: Spark, Kafka (bonus). - Security
: IAM, data governance, model audit logging.
Competencies
Competency Expectation
Problem Solving
Debug and optimise model pipelines; fix deployment failures
Innovation
Automate, optimise, and introduce emerging MLOps practices
Communication
Explain infra to both technical and non-technical stakeholders
Teamwork
Collaborate across DS, DE, and Support; mentor juniors
Change Advocacy
Champion new tools, frameworks, or practices in ML lifecycle
Performance Metrics
- Model deployment success rate, rollback frequency, MTTD/MTTR.
- Model latency, throughput, and drift over time.
- Business value metrics linked to model performance (e.g., cost savings, conversion).
Machine Learning Engineer
Posted today
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Job Description
Develop domain-specific ML models
Leading end-to-end lifecycle of ML projects from data preparation and model training to deployment and monitoring
Optimizing existing ML models for scalability and performance in production environments
Document workflows
Matric / Grade 12
Tertiary Qualification in Information Communication Technology (ICT)
Relevant Cloud Certification
Min 3 - 6 Years experience as a Machine Learning Engineer
Between 3 - 5 Years
Machine Learning Engineer
Posted 3 days ago
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Join a Credit Division as a Machine Learning Engineer , where you’ll help bring the bank’s AI strategy to life. Working alongside Data Scientists and Decision Scientists , you’ll design, implement, and enhance machine learning platforms while driving the delivery of scalable AI solutions. The effective use of AI will be a defining competitive advantage, and this role offers the chance to shape that future. You’ll take models from concept through to production—applying modern engineering practices, big data processing, and cloud technologies—to build predictive solutions that have a direct impact on our clients and business.
Responsibilities:
- Design, build, and deploy scalable machine learning models for real-world credit applications.
- Partner with data scientists and decision scientists to enhance model accuracy, efficiency, and performance.
- Develop, maintain, and improve machine learning pipelines and platforms.
- Apply big data frameworks (Hadoop, Kafka, PySpark) for large-scale data processing.
- Ensure models meet rigorous production standards for scalability, robustness, and maintainability.
- Leverage cloud platforms (AWS preferred) for deploying and managing AI solutions.
- Follow software engineering best practices, including version control (Git/GitHub) and peer reviews.
- Stay ahead of emerging trends in AI, ML, and big data to recommend innovative solutions.
Qualifications and experience:
- Master’s degree in information technology, computer science, engineering, or related field.
- Strong Python programming skills with experience in ML libraries (scikit-learn, TensorFlow, PyTorch).
- Solid SQL knowledge for data extraction, transformation, and optimisation.
- Experience with PySpark and distributed data processing.
- Hands-on exposure to big data frameworks (Hadoop, Kafka).
- Proven experience deploying and maintaining ML models in production environments.
- Proficiency in version control (Git/GitHub).
- AWS certification or strong AWS project experience (highly advantageous).
- Credit scoring: Logistic Regression, XGBoost, LightGBM
- Default prediction: Random Forest, GBMs, Logistic Regression
- Loan approval automation: Decision Trees, GBMs
- Fraud detection: Neural Networks, Isolation Forest, SVM
- Collections prioritisation: Clustering, Gradient Boosting
- Customer segmentation: K-means, DBSCAN, Hierarchical Clustering
The reference number for this position is NG60786 which is a p ermanent, hybrid position in Cape Town offering a salary of up to R1.4mil CTC salary negotiable based on experience. E-mail Nokuthula on e-Merge.co.za or call her for a chat on to discuss this and other opportunities.
Are you ready for a change of scenery? E-Merge IT recruitment is a niche recruitment agency. We offer our candidates options so that we can successfully place the right people with the right companies, in the right roles. Check out the E-Merge IT website for more great positions.
Do you have a friend who is a developer or technology specialist? We pay cash for successful referrals!