Full-Time

Machine Learning Engineer

Adapter

Adapter

11-50 employees

Orchestrates daily tech, reduces screen time

Compensation Overview

$180k - $225k/yr

+ Equity

Remote in USA

Remote

Category
AI & Machine Learning (2)
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Requirements
  • Experience with large-scale data processing and distributed systems
  • Strong programming skills in Python
  • Proficiency in machine learning libraries such as PyTorch, TensorFlow etc.
  • 3+ years of experience in a similar role, focus on developing and deploying ML models in production environments
  • Proficient in designing, developing, and operating fine-tuning pipelines in production environments
Responsibilities
  • Use the latest cutting edge technologies such as large language models and multimodal models to handle complex problems.
  • Work with large datasets, perform data preprocessing, and engineer relevant features to enhance model performance.
  • Build frameworks that allow us to iterate and evaluate model versions (ranking, accuracy, latency).
  • Deploy Models at Scale: Collaborate with software engineers to deploy machine learning models into production, ensuring seamless integration with existing systems.
  • Monitoring and Maintenance: Implement monitoring solutions to track model performance in real-time and perform regular maintenance and updates as needed.
  • Collaboration: Work closely with cross-functional teams, including data scientists, software developers, and business analysts, to understand requirements and deliver impactful solutions.
  • Research and Innovation: Stay abreast of the latest advancements in machine learning and contribute to the research and development of innovative solutions.
Desired Qualifications
  • Experience with optimizing models for size, cost, and latency is a plus
  • Startup experience is a plus

Adapter helps people manage their daily technology in one place by acting as an autonomous conductor for personal data. It uses LIFE RADAR to filter noise and ensure important information isn’t missed, SEAMLESS COORDINATION to optimize schedules, friends’ plans, and preferences, and a BOUNDLESS MEMORY that archives important information. It connects to services like iMessage, WhatsApp, email, calendars, and Google accounts, learns from conversations and data to tailor what matters and deliver proactive REMINDERS THAT WORK. The goal is to reduce chaos and screen time by proactively organizing information and coordinating plans across apps, so users can focus on what matters most. Compared with competitors, Adapter emphasizes proactive attention management, cross-app orchestration, and an ongoing personal data model to deliver timely, personalized actions rather than just aggregating data.

Company Size

11-50

Company Stage

N/A

Total Funding

N/A

Headquarters

Kyiv, Ukraine

Founded

2022

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Simplify Jobs

Simplify's Take

What believers are saying

  • Adapter raised $17.8 million on July 14, 2026 from GV, Bond, and Hillspire.
  • The company has only 17 employees, showing capital-efficient execution and room to scale.
  • Adapter targets recurring data workflows, making switching costs rise as memory deepens.

What critics are saying

  • Adapter is still waitlist-only for consumer use, limiting revenue visibility in 2026.
  • OpenAI, Google, and Slack can replicate connectors and squeeze Adapter's middleware margins.
  • If integrations break trust or security, users abandon it and the cognition graph collapses.

What makes Adapter unique

  • Adapter launched July 14, 2026 as a cognition layer, not another LLM wrapper.
  • Adapter Mind exposes an MCP server to connect Codex, Claude, and Cursor.
  • Adapter promises privacy-first data control, keeping personal and work data off model providers.

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Benefits

Early stage equity

Comprehensive health insurance

Unlimited Paid Time Off

Flexible Work Hours

Growth & Insights

Headcount

6 month growth

0%

1 year growth

0%

2 year growth

0%