
Machine Learning Platform Engineer
2 hours ago
Job Description
About the Role
Synechron is seeking a highly skilled
Machine Learning Platform Engineer
to join our technology team supporting
a Leading Australian Bank
. You will be instrumental in developing, deploying, and managing end-to-end machine learning workflows in a scalable cloud environment. This role is ideal for professionals who are passionate about ML operations (MLOps), cloud infrastructure, and delivering secure and reliable AI/ML solutions at scale.
Key Responsibilities
- Design, develop, and manage ML workflows
using
Amazon SageMaker
,
AWS Glue
, and
Apache Airflow
. - Deploy and monitor
scalable applications and ML models on
Amazon EC2
and
AWS Lambda
. - Automate infrastructure provisioning
and resource management using
AWS CloudFormation
. - Containerize applications
using
Docker
and build robust
CI/CD pipelines
with
GitHub Actions
. - Collaborate with data scientists, software engineers, and product teams to
integrate ML models into production environments
seamlessly. - Write
clean, efficient, and reusable Python code
for automation, data processing, and orchestration. - Ensure
security, scalability, and reliability
of all ML systems and cloud-based deployments in compliance with banking standards. - Implement monitoring, logging, and alerting to ensure system health and performance.
- Drive best practices in MLOps, including version control, testing, and reproducibility of ML experiments.
Required Skills and Experience
- 4–7+ years
of experience in MLOps, Cloud Engineering, or Machine Learning Engineering. - Strong hands-on experience with
AWS services
, particularly
SageMaker
,
Glue
,
EC2
,
Lambda
, and
CloudFormation
. - Proficiency in
Python
for automation, ML workflows, and infrastructure scripting. - Solid experience with
Apache Airflow
for workflow orchestration and data pipeline management. - Experience in
Dockerizing applications
and working with containerized environments. - Knowledge of
CI/CD pipelines
using
GitHub Actions
or similar tools. - Understanding of machine learning lifecycle, model deployment strategies, and production monitoring.
- Familiarity with security best practices, especially in a
regulated industry
like financial services. - Strong collaboration and communication skills, with the ability to work effectively across engineering, data, and business teams.
Preferred Qualifications
- AWS certifications (e.g.,
AWS Certified Machine Learning – Specialty
,
Solutions Architect
, or
DevOps Engineer
). - Experience working in
financial services
or within large enterprise environments. - Familiarity with model registry, feature stores, and experiment tracking tools (e.g., MLflow, SageMaker Experiments).
- Exposure to Infrastructure-as-Code tools such as
Terraform
is a plus.
What We Offer
- Opportunity to work on advanced ML infrastructure and cloud-native solutions with Australia's leading bank.
- Access to large-scale real-world ML problems and enterprise-grade tooling.
- Work with a collaborative and innovative team at the forefront of cloud and AI technologies.
- Access to ongoing learning, certifications, and development resources through Synechron's global programs.
Ready to build the future of AI in banking?
- Apply today and be a part of cloud and ML transformation journey with Synechron.
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