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Fireworks AI

Applied Machine Learning Engineer

Location
San Mateo
Type
full-time
Department
Engineering
Last seen
38d ago
The Role:
As an Applied Machine Learning Engineer, you will serve as a vital bridge between cutting-edge AI research and practical, real-world applications. Your work will focus on developing, fine-tuning, and operationalizing machine learning models that drive business value and enhance user experiences. This is a hands-on engineering role that combines deep technical expertise with a strong customer focus to deliver scalable AI solutions.
Key Responsibilities:
•
Customer Success: Collaborate directly with the GTM team (Account Executives and Solutions Architects) to ensure smooth integration and successful deployment of ML solutions.
•
Demo / Proof of Concept (PoC): Build and present compelling PoCs that demonstrate the capabilities of our AI technology.
•
Application Build: Design, develop, and deploy end-to-end AI-powered applications tailored to customer needs.
•
Platform Features / Bug Fixes: Contribute to the internal ML platform, including adding features and resolving issues.
•
New Model Enablements: Integrate and enable new machine learning models into the existing platform or client environments.
•
Performance Optimizations: Improve system performance, efficiency, and scalability of deployed models and applications.
•
Partnership Enablement: Work closely with partners to enable joint AI solutions and ensure seamless collaboration.
Minimum Qualifications:
•
Bachelor’s degree in Computer Science, Engineering, or a related technical field.
•
5+ years of experience in a software engineering role, with a strong preference for customer-facing roles.
•
Robust coding skills required, preferably with proficiency in Python.
•
Demonstrated ability to lead and execute complex technical projects with a focus on customer success.
•
Strong interpersonal and communication skills; ability to thrive in dynamic, cross-functional teams.
Preferred Qualifications:
•
Master’s degree in Computer Science, Engineering, or a related technical field.
•
Experience working in a startup or fast-paced environment.
•
Hands-on experience fine-tuning machine learning models, including supervised fine-tuning (SFT) and reinforcement learning from human feedback (RLHF or RFT).
•
Solid understanding of generative AI, machine learning principles, and enterprise infrastructure.
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