ML Engineer, Model Training - Senior Member of Technical Staff (SMTS)
Indexed description
Remote in Poland!
Project Descriptio
n:AMD is building a hardware-assisted security platform that uses silicon-level Performance Monitoring Counters (PMCs) and on-chip machine learning to detect advanced endpoint threats (ransomware, fileless malware, cryptojacking) at the processor layer, below OS-based evasion. The platform collects CPU behavioral telemetry, classifies it via an ML inference engine, and exposes threat signals to security-software partners through a standardized API. The team covers the full stack: silicon telemetry, ML training/validation, real-time inference, lab qualification and CI/C
D.
Responsibilit
ies:Define and lead the ML model roadmap, progressing from binary malware/benign classification through multi-class threat taxonomy to behavioral attack-pattern detect
ion.Architect training pipelines that scale to a growing malware variant library with reproducible, versioned experiments; establish model quality gates for production promot
ion.Lead research into advanced detection techniques including behavioral sequence modeling and detection of novel, previously unseen threat categor
ies.Optimize multi-class ML classifiers for NPU inference against throughput and latency requirements; collaborate with hardware teams on NPU capability requireme
nts.Drive dataset strategy including coverage across threat categories, synthetic data generation and dataset quality standa
rds.Mentor MTS ML engineers; lead model and code reviews; establish best practices for reproducibility, documentation and experimental rigor. Represent ML model strategy in architecture reviews, external partner technical meetings and potential research publicati
ons.
Mandatory Skills Descri
ption:7+ years of applied ML experience, including 3+ years in security, anomaly detection or hardware/syste
ms ML.Expert-level proficiency in PyTorch or TensorFlow; strong Python; experience leading ML platform or infrastructure decisions. Demonstrated record of taking ML models from research to production deplo
yment.Experience with model deployment on GPU, NPU or other specialized hardware acceler
ators.Ability to lead technical direction and influence cross-functional
teams.
Nice-to-Have Skills Desc
ription:Research or industry experience in hardware-assisted security, side-channel analysis or microarchitectural s
ecurity.Familiarity with AMD compute toolchains or AMD NPU inference fra
meworks.Knowledge of attack classification frameworks and enterprise threat hunting method
ologies.Experience collaborating with endpoint security software
vendors.
Languages:English: B2 Upper In
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