We are seeking a Machine Learning & Deep Learning Lead/Architect to design and operationalize scalable ML/DL solutions using open-source AI frameworks and Oracle Cloud Infrastructure (OCI). In this role, you will define end-to-end architecture for model development and production deployment, building robust MLOps pipelines for training, automated release, monitoring, governance, and continuous improvement. You will leverage OCI Data Science, OCI AI Services, OCI Object Storage, and GPU instances to deliver cost-effective, secure, and high-performing ML workloads, while integrating tools such as MLflow, Kubeflow, and Airflow for reproducibility, versioning, and CI/CD. You will partner closely with product, data, and engineering teams to align technical choices with business outcomes, establish best practices for reliability and compliance, and mentor practitioners across modern ML/DL frameworks and cloud-native delivery. This role requires strong technical depth, architectural leadership, and excellent stakeholder communication.
Skills Required
10+ years of ML/DL experience, with 3+ years in architecture/leadership roles.
Proven track record of deploying ML/DL solutions using open-source frameworks and MLOps practices.
Hands-on experience with Oracle Cloud Infrastructure (OCI Data Science, AI Services, Object Storage, GPU/accelerators).
Strong knowledge of MLOps tools
Excellent leadership, communication, and stakeholder management skills.
Key Responsibilities
Architect ML/DL solutions using open-source frameworks (TensorFlow, Hugging Face, Scikit-learn).
Design and implement MLOps pipelines for model training, deployment, monitoring, and governance.
Leverage OCI services (OCI Data Science, OCI AI Services, OCI Object Storage, OCI GPU instances) for scalable ML workloads.
Integrate open-source MLOps tools (MLflow, Kubeflow, Airflow) with OCI-native services.
Define standards for reproducibility, versioning, and automated CI/CD of ML models.
Collaborate with product, data, and engineering teams to align ML/DL architecture with business goals.
Ensure cost optimization, scalability, and compliance in ML/DL deployments on OCI.
Mentor teams in open-source ML/DL frameworks, OCI cloud-native practices, and MLOps methodologies.
Stay updated with advancements in open-source AI, OCI services, and MLOps tooling.
Lead execution of projects across Machine Learning and Deep Learning frameworks
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