Mindera is a global consulting and engineering company with 1100+ people, delivering technology solutions across 9 locations β from Brazil to Australia. We work across diverse industries, from Fintecβ¦
Job Overview
We are looking for a senior SRE / DevOps practitioner to design, standardise, and operate cloud platforms that support multiple AI-driven products and services. This role focuses on building opinionated, reusable infrastructure patterns that enable teams to rapidly deliver AI workloads while maintaining high standards for reliability, security, and cost control.
Key Responsibilities
Develop platform architecture across multiple concurrent projects, ensuring consistency in how services are deployed, integrated, and operated.
Shape how workloads are built, deployed, and monitored, as well as define clear patterns for service communication, API exposure, and infrastructure provisioning.
Make strong architectural decisions, reduce variability across teams, and balance flexibility with standardisation in a fast-moving environment.
Required Qualifications
Platform Architecture & Standardisation
Define and implement opinionated architecture patterns for cloud-native and AI-enabled services on AWS
Establish reusable blueprints for these same services
Drive consistency across multiple projects through shared modules, templates, and platform tooling
Infrastructure as Code & Automation
Build and maintain Terraform-based infrastructure, using modular and reusable design
Define CI/CD patterns for infrastructure deployment, application and model delivery
Enforce best practices through pipelines and automation rather than documentation
Reliability, Observability & Operations
Embed SRE principles across all services: monitoring, logging, tracing, SLIs/SLOs and alerting
Continuously improve reliability, performance, and cost efficiency
Operate API gateway/data plane technologies (e.g. Kong)
Required Skills & Experience
Strong experience operating AWS-based platforms in production
Proven experience with Terraform, including module design and CI/CD integration
Hands-on experience with container platforms (ECS preferred; EKS acceptable if adaptable)
Experience operating API gateways (Kong or equivalent)
Solid understanding of cloud networking and service discovery patterns
Experience supporting multiple teams or projects on a shared platform
Strong troubleshooting and production operations experience
AI / Data Platform Experience
Practical experience running or supporting AI/ML workloads in production, such as model inference services, batch processing pipelines, integration with LLM APIs or hosted models
Understanding of scaling characteristics of AI workloads and cost considerations (compute-heavy workloads, GPU usage, etc.)
Familiarity with tooling such as model serving frameworks, data processing pipelines, or managed AI services on AWS
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