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Product Manager, Training

Join Fireworks AI as a Product Manager to shape the future of AI training products for enterprises.

Location
San Mateo
Compensation
Not disclosed
Level
mid
Type
full time

Posted by employer 1 month ago

First seen on Joblaze 1 month ago

Last verified on the company career page 2 hours ago

AI in the day-to-day

Fireworks enables companies to build, train, and serve AI models tailored to their own data.

Requirements

Experience
2–8 years
Education
Bachelor's degree

Not disclosed in this posting: compensation, work arrangement, visa sponsorship.

Joblaze summary

In the role of Product Manager for Training at Fireworks AI, the individual will focus on developing and executing strategies for the training product, engaging directly with customers to enhance their experience and streamline processes. Key skills include a strong technical background in computer science or engineering, along with experience in product management for technical products. This position is ideal for someone with 2 to 8 years of relevant experience who thrives in a fast-paced, innovative environment and is comfortable navigating ambiguity.

Joblaze insights

  • Listed about a month ago — first seen on Joblaze August 21, 2026. Last confirmed on Fireworks AI's careers page October 10, 2026.
  • AI/ML appears in 28.5% of 291 comparable mid product roles.

Quick facts

How much experience is required?
2–8 years of relevant experience for this Product Manager, Training role.
What's the tech stack?
Joblaze extracted these technologies from the posting: AI infrastructure, AI/ML, MLOps.
What seniority level is this role?
Fireworks AI targets mid-level candidates for this position.
Is this full-time or contract?
Full-time for this Product Manager, Training role at Fireworks AI.

From the original posting

THE ROLE:

Fireworks is building specialized intelligence to enable companies to own their AI with frontier-beating quality and efficiency. Training is at the core of how they get there. As a PM working on training, you’ll help set strategy, write specs, sit with customers running real tuning jobs, and work across our training, research, and inference teams to deliver real customer impact. Example problems you may work on include determining how to grow our self-serve training usage or making training easier and faster for our enterprise users.

KEY RESPONSIBILITIES:

  • Own the roadmap, strategy, and success metrics for parts of the Fireworks training product, across API, UI, and CLI.

  • Work directly with AI-native startups and enterprises running real training workloads — watch them work, unblock them whey they stall, and convert repeated pain into productized capability.

  • Turn the bespoke work our forward-deployed and applied ML teams do for top accounts into scalable, self-serve product.

  • Partner with product marketing, sales, and the field to launch training capabilities that land — pricing and packaging, docs, cookbooks, and enablement included.

MINIMUM REQUIREMENTS:

  • 2 – 8+ years of product management experience building technical or developer-facing products (we are hiring at multiple levels for this role).

  • Strong technical background — CS/EE degree, production engineering experience, or equivalent depth earned on the job.

  • Familiarity with the post-training lifecycle: dataset curation, SFT, LoRA/PEFT, RL-based methods, evaluation, and how these connect to inference in production.

  • Demonstrated ownership of a product area end to end from strategy, spec, launch, to metrics.

  • Excellent written communication. You can write a spec, a launch post, and a customer-facing explanation of a tradeoff, and all three will be clear.

  • Comfort with ambiguity, and a bias toward shipping and learning over waiting for certainty.

  • Deep hunger and motivation. This isn't a 9-5 job and you'll be expected to step up, especially during periods of "wartime."

PREFERRED QUALIFICATIONS:

  • You've personally fine-tuned models and shipped the result into something real.

  • Experience with ML platform, MLOps, or AI infrastructure products — training platforms, eval tooling, or model registries.

  • Familiarity with reinforcement fine-tuning specifics: reward modeling, rollout environments, and agent-training workflows.

  • Understanding of GPU economics and how training cost, throughput, and quality trade off against each other.

  • Open-source or developer-community experience — you know what makes an SDK or API feel good to use.

  • Early startup or founding experience.

Why Fireworks?

  • Solve Hard Problems: Tackle challenges at the forefront of AI infrastructure, from low-latency inference to scalable model serving.

Standard company text repeated across Fireworks AI's postings is omitted here.

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