More jobs:
AI Engineer; Expert
Job in
Pretoria, 0002, South Africa
Listed on 2026-07-17
Listing for:
ATS Client
Full Time
position Listed on 2026-07-17
Job specializations:
-
IT/Tech
AI Engineer (Applied/Software)
Job Description & How to Apply Below
Job Description
Define and build agentic system architectures leveraging Amazon Bedrock and agent frameworks.
Lead technical strategy for model selection, fine-tuning, and performance trade-offs.
Design and implement containerized deployment standards using Docker and Kubernetes.
Architect secure, low-latency networking for model-to-service communication.
Perform systems-level performance engineering, including load testing and capacity planning.
Establish MLOps practices, including CI/CD pipelines and model versioning.
Integrate foundation models into enterprise workflows for complex use cases.
Provide technical leadership and mentorship to engineers and stakeholders.
Requirements Essential Skills- System Architecture Design:
Proven experience in designing and building agentic system architectures using frameworks like Amazon Bedrock Agent Core. - Multi-Step Reasoning:
Strong expertise in orchestrating multi-step reasoning, tool invocation, and workflow automation for AI agents. - Model Training and Deployment:
Deep hands-on knowledge of training and deploying models using PyTorch and Tensor Flow. - Containerization:
Skills in Docker and Kubernetes for scalable and fault-tolerant ML/GenAI deployments. - Networking for ML Workloads:
Solid understanding of networking principles, including VPC design and low-latency communication patterns. - MLOps Practices:
Experience with CI/CD for models, model versioning, and observability in ML systems.
- Cloud Services
Experience:
Prior experience with Amazon Bedrock and other cloud-managed foundation model services. - Infrastructure as Code:
Familiarity with tools like Terraform for reproducible cloud infrastructure. - Serverless Architecture:
Knowledge of serverless components (e.g., AWS Lambda) for event-driven workflows. - Data Engineering:
Experience in building reliable ETL/data pipelines for model training and feature stores. - Observability Tools:
Familiarity with observability stacks like Prometheus and Grafana for monitoring ML services. - Enterprise Compliance:
Understanding of compliance considerations in regulated industries (e.g., automotive, finance).
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