Senior Deep Learning Engineer, Accuracy Evaluation
W skrócie
Senior Deep Learning Engineer needed for AI model evaluation at NVIDIA. Responsibilities include designing evaluation environments & methodologies, building infrastructure, and partnering with teams for model release decisions. Requires BS/MS/PhD, 6+ years LLM/multimodal AI experience, strong statistics, and infra building skills.
Słowa kluczowe
Skrót przygotowany przez AI na podstawie treści ogłoszenia.
What you will do
Role Overview
We are seeking senior engineers to pioneer new methodologies for accurately assessing the performance and capabilities of ground-breaking deep learning models, including LLMs, RAG, agents, and vision models. You will collaborate across the organization to bring the latest flagship models from our community and partners to life. This role offers an outstanding opportunity to craft the future of AI at a fast-growing company at the forefront of the AI revolution. Join our team of world-class software engineers and partners to deliver the most advanced models with lightning-fast inference. You'll work on the most powerful, enterprise-grade GPU clusters capable of hundreds of PetaFLOPS and gain early access to unreleased hardware, making a direct impact on NVIDIA's roadmap and the broader AI landscape!
What you’ll be doing:
- Design and build decision-grade evaluation environments for NVIDIA's frontier models spanning reasoning, multimodal, long-context, and agentic systems, producing auditable accuracy signals that gate every major model release.
- Research and develop novel evaluation methodologies for emerging model families and capability domains (low-precision numerics, multi-turn agentic tasks, code generation) where established benchmarks don't yet exist or don't generalize.
- Build and operate the evaluation infrastructure and pipelines including benchmark environments, regression CI systems, and statistical analysis tooling, used by model, product, and applied research teams across NVIDIA.
- Partner with model research, training, and customer teams to translate evaluation signals into concrete decisions: release go/no-go, training iteration direction, and competitive positioning against external frontier models.
What we offer
Your base salary will be determined based on your location, experience, and the pay of employees in similar positions. For Poland: The base salary range is 375,000 PLN - 650,000 PLN.
Requirements
What we need to see:
- BS, MS, or PhD in Computer Science, Machine Learning, Statistics, or a related field
- 6+ years of hands-on experience with LLMs, designing and running evaluations for large language models or multimodal AI systems, including experience with agentic, multi-turn, or reasoning-heavy settings.
- Strong statistical foundations: experimental design, significance testing, regression analysis, and the ability to distinguish signal from noise in benchmark results at scale.
- Proven experience building evaluation infrastructure (pipelines, benchmark harnesses, reproducible CI systems) not just consuming existing benchmarks.
- Clear, precise communicator who can translate quantitative evaluation results into decisions for researchers, product teams, and senior leadership.
Ways to stand out from the crowd:
- Deep familiarity with open-source evaluation frameworks
- Experience designing evaluations for agentic systems: tool use, multi-turn reasoning, environment-based benchmarks (SWE-bench, GAIA, Web
Arena-style), or interactive evaluation settings.
- Track record of publishing or contributing to evaluation research, new benchmark design, methodology papers, or reproducibility analyses that shaped how the field measures model capability.
- Experience measuring model accuracy under low-precision inference (FP8, INT4, quantization-aware settings) and understanding how calibration and sparsity interact with benchmark results.
- Comfort running large-scale workloads on HPC/Slurm clusters, including reproducible experiment management (MLflow, W& B) and compute cost optimization across hundreds of benchmark runs.
| Opublikowana | 2026-08-21 |
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