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A leading technology company seeks a Machine Learning Engineer specializing in AIOps to innovate and enhance consumer products. The role involves collaboration with cross-functional teams to integrate advanced language models and ensure seamless user experiences. Ideal candidates will have a strong background in machine learning, excellent communication skills, and a passion for driving innovation.
Add to Favourites Sales - Machine Learning Engineer, AIOps
Imagine what you could do here. At Apple, great ideas have a way of becoming phenomenal products, services, and customer experiences very quickly. Bring passion and dedication to your job and there’s no telling what you could accomplish!Why Apple?At Apple, we believe our products begin with our people. By hiring a diverse team we drive creative thought. By giving that team everything they need we drive innovation. By hiring incredible engineers we drive precision. And through our collaborative process we build memorable experiences for our customers!We are looking for a highly skilled and experienced AIOps Machine Learning Engineer who has a robust understanding of Large Language Models and Generative AI to help work on exciting technologies for future Apple products and bring it to live. In this role, you will join a team of machine learning engineers with different specialization to discover and build solutions to previously-unsolved challenges and push the state of the art for global audience.You will collaborate with multi-functional teams of business SMEs, engineers, data scientists, designers, and researchers. This role is exceptionally technical, and will require you to actively engage in all aspects of the work, from conceptualization and theoretical considerations to design, coding, and implementation.
In this role, you will focus on the following key areas:Model Management: Oversee the deployment, maintenance, and scaling of LLM, and services within our consumer-facing products.CI/CD: Build and maintain CI/CD pipelines to automate model train/test/deployment and scaling.Collaborative Integration: Partner with product developers, UX designers, and data scientists to ensure a seamless and intuitive integration of language models into our products.Continuous Monitoring: Build Dashboard and Regularly track model performance, ensuring consistent accuracy and reliability for consumers. Set up alerts and manage the type of monitoring needed.Feedback Integration: Develop strategies for collecting user feedback and refining the model for better alignment with consumer needs.Bias Mitigation: Proactively address and reduce potential biases in model predictions, ensuring our products are inclusive and fair.Infrastructure Management: Design and implement efficient data pipelines to support large language model training and inferenceDocumentation: Maintain comprehensive documentation covering model versions, deployment protocols, and performance metrics.Research & Development: Stay updated with the latest trends in large language models and MLOps, ensuring our consumer products remain at the forefront of innovation.