Machine Learning Researcher - London

microTECH Global LTD
London, GB
On-site

Job Description

As a Machine Learning Engineer, you will take the lead on optimising the functionality, performance, and algorithmic engineering powering our machine learning models. This is a critical role for a hands-on expert who can deliver state of the art models, set the standard for performance, and ensure our models are accurate, robust, efficient and scalable.

What you’ll do:

  • Lead the development and refinement of novel machine learning architectures and algorithms harnessing our nonlinear dynamics. Building deeper network architectures that maximise efficiency and performance.
  • Design, build and test models both on device and using in-house simulation framework.
  • Collaborate closely with the wider photonics and hardware team to design and evaluate general metrics to assess the computational properties of the hardware and optimise for computational performance.
  • Research state-of-the-art machine learning & machine vision techniques and adapt them to be compatible with our hardware.
  • Experience:
  • Proven track record of developing novel algorithms (papers in NeurIPS, ICML, ICLR, CVPR, or Nature/Science journals)
  • Hardware Aware ML / Neuromorphic Computing:
  • FPGAs, ASICs, analog computing chips, spiking neural network (hardware), edge AI
  • Unconventional training algorithms
  • Reservoir computing, self-constrastive learning, forward-forward learning, evolutionary algorithms, equilibrium propagation
  • Physics informed neural networks, or applied ML to physics problems
  • Deep understanding of mathematics, algebra / topology - key words are latent space, intrinsic dimensionality
  • Experience working with hardware as well is a bonus

Skills & Requirements

Technical Skills

Machine learning architecturesAlgorithmsNonlinear dynamicsNetwork architecturesModel developmentModel testingModel evaluationHardware-aware mlNeuromorphic computingFpgasAsicsAnalog computing chipsSpiking neural networkUnconventional training algorithmsReservoir computingSelf-constrastive learningForward-forward learningEvolutionary algorithmsEquilibrium propagationPhysics informed neural networksApplied ml to physics problemsMathematicsAlgebraTopologyAbility to lead development and refinement of novel machine learning architectures and algorithmsAbility to collaborate closely with the wider photonics and hardware teamAbility to research state-of-the-art machine learning & machine vision techniquesMachine learningResearch

Employment Type

FULL TIME

Level

senior

Posted

4/14/2026

Apply Now

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