Staff Machine Learning Scientist

VISA

Warszawa, Wola
30000 zł/mth.
Hybrydowa
PyTorch
Spark
Hadoop
Hybrydowa

Requirements

Expected technologies

PyTorch

Spark

Hadoop

Operating system

macOS

Our requirements

  • 5+ years of relevant work experience with a Bachelor’s Degree or at least 2 years of work experience with an Advanced degree (e.g. Masters, MBA, JD, MD) or 0 years of work experience with a PhD, OR 8+ years of relevant work experience.
  • 5+ years of relevant work experience with a Bachelor’s Degree or at least 2 years of work experience with an Advanced degree (e.g. Masters, MBA, JD, MD) or 0 years of work experience with a PhD, OR 8+ years of relevant work experience.
  • MS or PhD in a quantitative discipline such as Statistics, Data Science, Mathematics, Physics, Operations Research, Engineering, or a related field, with demonstrated strength in machine learning, deep learning, or equivalent practical experience.
  • 7+ years of experience applying data science and machine learning to solve business problems, with proficient Python coding skills and deep expertise in statistical analysis.
  • Exceptional problem-solving abilities, with experience designing and implementing complex data science solutions.
  • Hands-on experience developing and deploying deep learning models using PyTorch, including model architecture design and optimization.
  • Strong background in deep learning, including architectures such as Transformers. Experience with Large Language Models (LLMs), natural language processing (NLP), and advanced expertise in time-series modeling techniques.
  • Proficiency with big data tools and frameworks (e.g., Spark, Hadoop), and practical experience implementing MLOps practices such as model versioning, automated deployment, and production monitoring.
  • Strong understanding of model interpretability techniques, with the ability to analyze, articulate, and justify the decision-making processes of machine learning and deep learning models.

Optional

  • Experience working with financial data and building machine learning solutions for financial services, trading, risk, or related applications is desired.
  • Publications in recognized machine learning, data mining, or artificial intelligence journals and conferences are a strong plus.

Your responsibilities

  • Develop and apply cutting-edge algorithms and models, ranging from classical machine learning to deep learning techniques, including advanced neural network architectures such as Transformers, Graph Neural Networks (GNNs), and other emerging paradigms.
  • Pioneer and apply novel data science, deep learning, and AI methodologies to address unique business challenges and drive innovation.
  • Stay up-to-date with the latest research in machine learning, deep learning, and neural network architectures, integrating relevant advancements into business solutions.
  • Build, experiment with, and implement statistical, machine learning, and deep learning algorithms - including custom techniques as well as industry-standard tools.
  • Devise and apply advanced methods for explainability and interpretability of deep learning models, including mechanistic interpretability and model transparency techniques.
  • Develop and implement adaptive learning systems, as well as methods for model validation, A/B testing, and robust performance evaluation.
  • Collaborate with data engineers, software developers, product teams, and business stakeholders to translate business requirements into impactful machine learning solutions.
  • Communicate complex technical concepts, findings, and recommendations clearly to both technical and non-technical audiences.
  • Work with both structured and unstructured data, experimenting with in-house and third-party datasets to evaluate their relevance and value for business objectives.
  • Automate all stages of the predictive pipeline to streamline development and minimize manual intervention in both development and production environments.
Wyświetlenia: 4
Opublikowana25 dni temu
Wygasaza 20 dni
Tryb pracyHybrydowa
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