MLOps Engineer
Factored was conceived in Palo Alto, California by Andrew Ng and a team of highly experienced AI researchers, educators, and engineers to help address the significant shortage of qualified AI & Machine-Learning engineers globally. We know that exceptional technical aptitude, intelligence, communication skills, and passion are equally distributed around the world, and we are very committed to testing, vetting, and nurturing the most talented engineers for our program and on behalf of our clients.
We are looking for a MLOps Engineer to join our team. You will participate in the development and maintenance of AI products for our clients. At Factored we are building a company that we all hold as our own, every single one of us. We need your skills to help take this rocketship to new heights and help create new opportunities for us. In return, you will be rewarded with an amazing team that supports you, rich culture, shared success and the flexibility to work– from the comfort of your home.
Functional Responsibilities:
- Deploy machine learning models to production environments using industry best practices.
- Design and implement automated workflows for model training, testing, and deployment.
- Manage and optimize the infrastructure supporting machine learning workloads.
- Establish monitoring systems for deployed models to ensure performance and reliability.
- Work closely with data scientists, software engineers, and cross-functional teams to understand model requirements and business objectives.
- Ensure compliance with industry regulations and data protection standards.
- Stay informed about the latest advancements in MLOps and integrate relevant technologies and methodologies.
- Continuously optimize processes to enhance efficiency and reduce deployment times.
Qualifications:
- Bachelor's or Master's degree in Computer Science, Engineering, Mathematics, or a related field.
- Proven experience as MLOps Engineer, demonstrating successful development and maintenance of machine learning models.
- Strong programming skills in languages such as Python, R, or Java, along with experience with machine learning libraries/frameworks like TensorFlow, PyTorch, or scikit-learn.
- Solid understanding of machine learning algorithms, deep learning, and statistical modeling techniques.
- Experience with cloud platforms (e.g., AWS, Azure, GCP), Kubernetes, and Docker.
- Excellent verbal and written communication skills in English.
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