Full-Time

AI / Embedded ML Engineer

E-Space

E-Space

51-200 employees

Sustainable satellite constellations for AIoT data

Compensation Overview

$150k - $225k/yr

No H1B Sponsorship

Saratoga, CA, USA

In Person

Category
AI & Machine Learning (1)
Required Skills
LLM
Scikit-learn
Rust
Python
Regression
TensorFlow
PyTorch
Machine Learning
FreeRTOS
C/C++

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Requirements
  • At least 2 years of experience in machine learning engineering, including at least 2 years focused on embedded or edge machine learning.
  • A strong background in signal processing, sensor data handling, and real-time system constraints.
  • Hands-on experience with inertial measurement units, accelerometers, gyroscopes, barometers, microphones, and other sensor types.
  • Proficiency in Python for machine learning development using PyTorch, TensorFlow, or scikit-learn.
  • Experience with C or C++ for embedded systems development.
  • A solid understanding of model optimization techniques including quantization, pruning, and knowledge distillation.
  • Experience deploying models with at least one embedded machine learning framework such as TensorFlow Lite Micro, Edge Impulse, or ONNX Runtime.
  • A strong understanding of memory-constrained and power-constrained environments.
Responsibilities
  • Design and build data ingestion pipelines from inertial measurement units, accelerometers, gyroscopes, microphones, and other environmental sensors.
  • Clean, label, synchronize, and store raw sensor data.
  • Build tools to collect, version, and manage training datasets at scale.
  • Develop and train machine learning models for classification, regression, anomaly detection, and signal processing tasks.
  • Select model architectures for each problem and hardware target.
  • Fine-tune pre-trained models for domain-specific tasks and data distributions.
  • Design and run experiments to evaluate and compare model performance.
  • Optimize models for deployment on microcontrollers and edge processors such as ARM Cortex-M, RISC-V, and digital signal processors.
  • Apply quantization, pruning, and knowledge distillation to reduce model size and inference latency.
  • Use TensorFlow Lite Micro, Edge Impulse, ONNX Runtime, and ExecuTorch.
  • Integrate machine learning inference into embedded firmware written in C, C++, or Rust.
  • Profile and optimize memory usage, power consumption, and real-time performance.
  • Design hybrid architectures combining on-device lightweight models with large language model reasoning.
  • Build pipelines routing tasks between edge inference and cloud- or edge-hosted large language model components.
  • Evaluate latency, accuracy, and power trade-offs between on-device and large-language-model-assisted approaches.
  • Write clean, tested embedded software integrating machine learning inference into real-time systems.
  • Work with FreeRTOS, Zephyr, and bare-metal firmware environments.
  • Collaborate with hardware and firmware teams to co-optimize the full system stack.
  • Document design decisions, pipeline configurations, model benchmarks, and deployment procedures.
  • Prepare technical reports and presentations for internal teams and stakeholders.
  • Stay current with TinyML, embedded artificial intelligence, and edge computing developments and bring relevant innovations into the team.
  • Work with hardware engineers, firmware developers, and data scientists.
  • Provide technical support during hardware bring-up, system integration, and field testing.
  • Participate in design reviews and provide feedback across the stack.
Desired Qualifications
  • Experience with real-time operating system platforms such as FreeRTOS or Zephyr.
  • Familiarity with microcontroller families including NXP, STM32, and ESP32.
  • Experience designing hybrid edge-large-language-model pipelines or integrating small language models on device.
  • A background in feature extraction techniques such as fast Fourier transforms, filter banks, and wavelet transforms.
  • Experience with hardware-aware neural architecture search or automated machine learning for edge targets.
  • Familiarity with Rust for embedded or systems programming.
  • Prior work on products in wearables, robotics, industrial sensing, or Internet of Things.

E-Space creates and deploys small, easy-to-install devices that can be tracked and connected globally. Its E-Space LEO platform uses AIoT to optimize data from these devices, turning it into actionable insights and automation. They redesign spacecraft, antennas, and terminals to cut the cost of satellite systems and make space technology more accessible. They serve governments, businesses, communities, and individuals, and emphasize ESG goals by using space data to support sustainable decisions.

Company Size

51-200

Company Stage

Seed

Total Funding

$50M

Headquarters

Arlington, Texas

Founded

2021

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Simplify Jobs

Simplify's Take

What believers are saying

  • Arlington approved E-Space’s 30-year lease, signaling unusually strong local government backing.
  • Beyon and e& partnerships validate satellite IoT demand across Bahrain and Gulf operators.
  • The company’s sustainability pitch matches rising enterprise demand for cheaper, lower-impact connectivity.

What critics are saying

  • Arlington’s Spring 2027 build depends on $115 million public spending and strict hiring milestones.
  • E-Space disclosed only $50 million funding, far below its massive constellation ambitions.
  • If Arlington slips or capital dries up, E-Space becomes a perpetual concept company.

What makes E-Space unique

  • Greg Wyler’s patented LEO design targets zero-trust, gateway-free satellite networking.
  • CommAgility integration gives E-Space 5G NTN source code and payload development depth.
  • Arlington’s 2025 headquarters plan ties manufacturing, hangars, and satellite R&D together.

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Benefits

Competitive salaries

Continuous learning and development

Health and wellness care options

Financial solutions for the future

Optional legal services

Paid holidays

Paid time off

Growth & Insights and Company News

Headcount

6 month growth

0%

1 year growth

0%

2 year growth

1%
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