Inference Specialist, Creative Technology - InterPositive

Netflix, Inc.

Los Angeles (CA)

On-site

USD 165,000 - 265,000

Full time

14 days+

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Benefits offered by this job

Health Plans
401(k) Retirement Plan with employer match
Stock Option Program
Mental Health support
Paid leave of absence programs

Job summary

Netflix, Inc. in Los Angeles is seeking an Inference Specialist for Creative Technology. This role focuses on supporting production through machine learning model inference workflows, debugging complex issues, and building reliable pipelines for innovative storytelling.

The ideal candidate has over four years of experience in machine learning production and is comfortable with various generative AI systems and GPU technology.

Qualifications

  • 4+ years of relevant experience in machine learning production or creative technology.
  • Hands-on experience running GPU-based model inference for generative AI systems.
  • Experience debugging production runs using logs and generated outputs.

Responsibilities

  • Operate and support custom generative AI inference workflows.
  • Run, monitor, troubleshoot GPU-based inference jobs.
  • Debug failed or degraded runs using inspection tools.

Skills

Generative AI inference workflows
Python
GPU utilization
Debugging
Linux
Video production formats

Education

4+ years of relevant experience

Tools

PyTorch
CUDA
ffmpeg
OpenCV
NumPy

Job description

The Inference Specialist, Creative Technology will report to the Sr. Director, Creative Technology and support the Production, Research, and Engineering teams working at the frontier of storytelling innovation. This role owns the practical execution of model inference workflows, translating creative needs into reproducible runs, debugging complex generation issues, and helping build reliable pipelines by turning rapidly evolving research code into reliable creative production workflows.

Responsibilities
  • Operate and support custom generative AI inference workflows across a wide variety of film and series projects
  • Run, monitor, and troubleshoot GPU‑based inference jobs across local workstations, cloud infrastructure, and/or cluster environments, including distributed multi‑GPU runs
  • Prepare and validate inputs for model inference, including video, image, audio, masks, conditioning assets, prompts, metadata, and configuration files
  • Tune inference parameters in collaboration with Creative Technology leadership, artists, researchers, and engineers to achieve production‑quality results
  • Debug failed or degraded runs by inspecting logs, outputs, configs, model checkpoints, data shapes, masks, frame ranges, codecs, GPU utilization, and environment issues
  • Maintain clean, repeatable inference launch workflows, including scripts, config templates, run manifests, output naming conventions, and result tracking
  • Partner with researchers and engineers to test new models, checkpoints, samplers, conditioning methods, and pipeline changes in real production scenarios
  • Translate experimental model capabilities into usable production practices
  • Identify friction in inference workflows and drive improvements through tooling, automation, documentation, and better defaults
  • Support rapid iteration with artists and creative stakeholders by preparing outputs for review, comparing variations, tracking parameters, and surfacing clear recommendations
  • Own quality control for generated outputs
  • Help bridge communication between creative, production, research, and engineering teams by explaining technical constraints and creative tradeoffs clearly
  • Maintain awareness of GPU capacity, queue status, runtime expectations
  • Contribute to a culture of practical experimentation: move quickly, test carefully, document learnings, and turn one‑off fixes into repeatable workflows
Qualifications
  • 4+ years of relevant experience in machine learning production, VFX technology, post‑production engineering, creative technology, technical direction, or a closely related technical production role
  • Hands‑on experience running GPU‑based model inference for image, video, audio, or multimodal generative AI systems
  • Experience working with Python‑based ML codebases and command‑line workflows in Linux environments
  • Experience debugging production runs using logs, stack traces, configuration files, model inputs, and generated outputs
  • Working knowledge of deep learning inference concepts, including checkpoints, schedulers or samplers, seeds, precision, batching, conditioning, and GPU memory constraints
  • Experience with video and image production formats, including frame sequences, ProRes, H.264/H.265, EXR, PNG, MP4/MOV containers, resolution handling, frame rates, and colorspace considerations
  • Experience coordinating technical work across creative, production, research, and engineering stakeholders
  • Demonstrated ability to operate effectively in a fast‑moving R&D environment where tools, models, and workflows change frequently
Skills
  • Strong practical understanding of generative AI inference workflows, especially for video, image, audio, or multimodal models
  • Comfort working in Linux shells, Python environments, Git repos, config files, logs, and GPU infrastructure
  • Strong debugging instincts: able to isolate whether a problem is data, model, environment, code, infrastructure, or user configuration
  • Ability to reason about video and tensor fundamentals, including frame counts, aspect ratios, spatial resolution, temporal alignment, masks, channels, and batch dimensions
  • Experience with tools and libraries commonly used in production ML workflows, such as PyTorch, CUDA, ffmpeg, OpenCV, NumPy, safetensors, and distributed launch tools
  • Comfort with job schedulers, cloud GPU environments, or cluster workflows; Slurm experience is a strong plus
  • Careful eye for generated output quality, including temporal artifacts, mask errors, motion issues, color shifts, compression problems, and sync problems
  • Able to balance creative iteration speed with technical rigor, reproducibility, and clear communication
  • Self‑directed and ownership‑minded; comfortable seeing a messy problem, creating a path through it, and pulling in help when needed
  • Collaborative and calm under pressure, especially when supporting time‑sensitive creative reviews or production deadlines
  • Strong written communication, including the ability to document workflows, summarize test results, and explain technical findings to non‑technical partners
  • Comfort with ambiguity, rapidly changing tools, and incomplete information
  • Genuine interest in tooling for filmmakers, with the curiosity to engage deeply with both the creative possibilities and the engineering realities of the work
Compensation

This role has a total compensation range of $165,000.00 – $265,000.00, with options to allocate between salary and stock.

Benefits

Netflix provides comprehensive benefits including Health Plans, Mental Health support, a 401(k) Retirement Plan with employer match, Stock Option Program, Disability Programs, Health Savings and Flexible Spending Accounts, Family‑forming benefits, and Life and Serious Injury Benefits, along with paid leave of absence programs.

Equal Opportunity Employer

We are an equal‑opportunity employer and celebrate diversity. We approach diversity and inclusion seriously and thoughtfully. We do not discriminate on the basis of race, religion, color, ancestry, national origin, caste, sex, sexual orientation, gender, gender identity or expression, age, disability, medical condition, pregnancy, genetic makeup, marital status, or military service.

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