Research Scientist, Machine Learning for Monetization (PhD)

Meta

• $150K — $180K *
Consumer Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree in Computer Science or related field, or equivalent experience (must be completed before joining)
  • PhD in Machine Learning or related field, or equivalent experience (must be completed before joining)
  • Experience with Deep Learning algorithms such as CNNs and transformers
  • Experience with data efficient learning techniques
  • Proven ability to achieve results through research contributions, publications, or patents

Responsibilities

  • Develop scalable classifiers leveraging Machine Learning and regression models
  • Suggest and synthesize requirements for an effective feature roadmap
  • Adapt Machine Learning methods to optimize for modern parallel environments
  • Lead research that leads to tech demos and publications
  • Collaborate with cross-functional partners in product development

Benefits

  • Join a team shaping the future of AI and business interactions
  • Opportunities for collaboration with leading experts in machine learning and technology
  • Exposure to large-scale data sets and practical implementation of ML models
  • Engagement in innovative research with a focus on impact and application
  • Participation in a culture that promotes continuous learning and professional growth
Full Job Description
From making valuable connections between people and businesses to building premium services that deliver high-value experiences, the Monetization organization at Meta empowers people and businesses to succeed in the global economy. As Meta focuses on building the next evolution of social experiences, the Monetization team plays a crucial role in shaping the communication pathways and financial tools that all sized businesses need to thrive in the new digital economic environment. As a Machine Learning Research Scientist on the Monetization team at Meta, you can help build ML/AI technologies that connect users with businesses You'll help develop solutions that power large-scale platforms and AI innovations to power the Ads-ranking for Meta-scale across all the Meta surfaces.

Responsibilities

Develop highly scalable classifiers and tools leveraging Machine Learning, data regression, and rules based models
• Suggest, collect, and synthesize requirements to create an effective feature roadmap
• Adapt standard Machine Learning methods to best exploit modern parallel environments (e.g. distributed clusters, multicore SMP, and GPU)
• Lead and contribute to research that results in tech demos and/or publications
• Collaborate closely with cross-functional partners and contribute towards Meta's research product development

Minimum Qualifications
• Currently has, or is in the process of obtaining a Bachelor's degree in Computer Science, Computer Engineering, relevant technical field, or equivalent practical experience. Degree must be completed prior to joining Meta
• Currently has, or is in the process of obtaining, a PhD degree in Machine Learning, Artificial Intelligence, relevant technical field, or equivalent practical experience. Degree must be completed prior to joining Meta
• Experience in Deep Learning algorithms and techniques, e.g., convolutional neural networks (CNN), transformers, quantization, data efficient learning, or similar

Preferred Qualifications
• Proven track record of achieving significant results as demonstrated by grants, fellowships, patents, as well as first-authored publications at leading workshops or conferences such as NeurIPS, ICML, ICLR, AAAI, or similar
• Experience on Data Efficient Learning, domain adaptation, Semi-supervised Learning, etc
• Experience working and communicating cross-functionally in a team environment
• Exposure to architectural patterns of large scale software applications
• Experience solving complex problems and comparing alternative solutions, tradeoffs, and varied points of view to determine a path forward
• Demonstrated research and software engineering experience via an internship, work experience, coding competitions, or widely used contributions in open source repositories (e.g. GitHub)
• Experience manipulating and analyzing complex, high-volume, high-dimensionality data from varying sources

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