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Machine Learning Research Scientist at Sentra | San Francisco

SentraSan Francisco / Bay Area
On-site Full-time $150K/yr - $300K/yr

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Experience Level

Mid to Senior

Qualifications

Must-have RequirementsA minimum of 5 years of experience in developing novel systems within machine learning, NLP, knowledge graphs, or related fields, demonstrated through publications, production implementations, or significant open-source contributions. In-depth understanding of knowledge graphs, graph neural networks, or temporal reasoning, evidenced by delivered systems and architectural explorations. Robust foundation in machine learning and natural language processing, especially in areas such as information extraction, entity resolution, or semantic representation. Experience with large-scale data processing and machine learning frameworks. Proficient programming skills in languages relevant to machine learning and data analytics.

About the job

At Sentra, we are pioneering the development of organizational superintelligence through innovative memory infrastructure that intelligently processes time, causality, and context. As a Machine Learning Research Scientist, you will address fundamental challenges in knowledge representation, temporal reasoning, and semantic compression. Your mission will be to design and implement sophisticated systems that preserve the execution state for entire organizations, transforming millions of micro-events into robust knowledge and identifying patterns for predicting future events.

Key Responsibilities

  • Develop LLM-powered information extraction pipelines to convert unstructured communications and textual data into structured entity-relationship models.

  • Create memory consolidation algorithms that validate information through multiple observations, merge duplicate entities, and efficiently prune transient data.

  • Architect temporal knowledge graphs that represent organizational execution states as dynamic, continuously updated frameworks instead of static records.

  • Implement graph attention mechanisms and reasoning systems for intricate causal queries regarding blockers, dependencies, and outcome patterns.

  • Conduct research on lossy semantic compression using information-theoretic principles to distill event streams into query-relevant long-term memory.

  • Design entity resolution systems that effectively manage identity evolution, where entities may merge, split, and transform over time.

  • Construct meta-learning systems that uncover organizational patterns and discern when current situations align with historical indicators of success or failure.

  • Innovate privacy-preserving cross-organizational learning approaches utilizing federated learning and differential privacy techniques.

  • Publish research findings and actively contribute to the wider research community focused on knowledge graphs and organizational intelligence.

About Sentra

Sentra is at the forefront of creating cutting-edge memory infrastructure designed to enable organizations to achieve superintelligence. Our focus is on integrating technology that reasons over time, causality, and context to enhance decision-making capabilities and operational efficiency.

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