Full-Time

Senior Software Engineer

AI Infrastructure, LVM Inference & Evaluation

Updated on 8/1/2026

Ambient.ai

Ambient.ai

51-200 employees

AI-powered security software for proactive monitoring

Compensation Overview

$168k - $205k/yr

+ Stock options

Redwood City, CA, USA

Hybrid

Three days on-site per week required in Redwood City.

Category
Software Engineering (1)
Required Skills
LLM
Graphics Processing Unit (GPU)
Python
Distributed Systems
Software Testing
Neural Networks
CUDA
PyTorch
Machine Learning
Data Engineering
Docker
RAG
Observability
Computer Vision

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Requirements
  • 4+ years of industry experience building infrastructure, distributed systems, machine learning platforms, or production artificial intelligence systems.
  • A Bachelor of Science or Master of Science degree in Computer Science or a related technical field, or equivalent practical experience.
  • A strong programming background, especially in Python, with solid software engineering fundamentals.
  • Experience designing and building scalable machine learning infrastructure for training, inference, evaluation, and deployment.
  • Hands-on experience running deep learning models in production, ideally including large language models, large vision models, vision-language models, or multimodal models.
  • A strong understanding of inference optimization techniques, including batching, caching, quantization, parallelism, memory optimization, GPU utilization, and latency reduction.
  • Experience with model-serving frameworks or systems such as vLLM, Triton Inference Server, or similar technologies.
  • Experience building evaluation frameworks, test harnesses, benchmarks, regression tests, or model-quality measurement systems.
  • A strong background in machine learning and deep learning; computer vision experience is a strong plus.
  • Experience designing data engines or pipelines for collecting, managing, and curating training and evaluation data.
  • Familiarity with integrating advanced artificial intelligence systems such as large language models, large vision models, retrieval-augmented generation pipelines, embedding models, or multimodal models into production applications.
  • Experience with cloud infrastructure, containers, orchestration, distributed systems, and GPU-based workloads.
  • Strong collaboration and communication skills, with the ability to work effectively with research scientists, product teams, infrastructure teams, and stakeholders.
  • Proactive problem-solving ability, a strong ownership mindset, and adaptability to incorporate new artificial intelligence technologies and methodologies.
Responsibilities
  • Design, build, and maintain AI infrastructure for real-time computer vision, large language model, large vision model, and multimodal inference workloads.
  • Build scalable systems for running state-of-the-art models across large volumes of video and sensor data.
  • Optimize inference performance across latency, throughput, GPU utilization, reliability, and cost.
  • Develop evaluation harnesses and benchmarking systems to measure model quality, system performance, regressions, and production readiness.
  • Build infrastructure for continuous model evaluation, experimentation, and deployment.
  • Partner with research scientists to productionize advances in computer vision, large language models, large vision models, retrieval-augmented generation, and multimodal artificial intelligence.
  • Improve model-serving architecture, including batching, caching, routing, quantization, model parallelism, and hardware utilization.
  • Develop data engines and feedback loops for collecting training data, evaluating model behavior, and continuously improving AI performance.
  • Create reliable observability, monitoring, and debugging tools for production AI systems.
  • Help define best practices for deploying, evaluating, and operating AI systems in real-world enterprise environments.
Desired Qualifications
  • Experience operating large-scale GPU infrastructure or distributed inference systems.
  • Experience with CUDA, NCCL, PyTorch, TensorRT, ONNX, or similar machine learning systems technologies.
  • Experience with video understanding, real-time computer vision, multimodal AI, or physical-world AI systems.
  • Experience with model compression, speculative decoding, distillation, pruning, or low-latency serving techniques.
  • Experience with prompt evaluation, model regression testing, human-in-the-loop evaluation, or automated quality gates.
  • Familiarity with retrieval-augmented generation, vector databases, embedding models, re-rankers, or search infrastructure.
  • Experience building internal machine learning platforms or tools used by researchers and applied machine learning teams.

Ambient.ai provides AI-powered software that enhances physical security by integrating with an organization’s existing security systems to enable proactive operations. The product uses artificial intelligence and computer vision to detect unexpected changes in human behavior, locations, and context. It does not perform facial recognition, prioritizing privacy while improving group security, and relies on an expansive, real-time-adapting library of threat signatures to identify potential threats. Security officers receive AI-verified alerts that help reduce false alarms and improve operational efficiency. Ambient.ai differentiates itself by privacy-preserving behavior-based detection, real-time threat adaptation, and seamless integration with existing security infrastructure, rather than building from scratch as a standalone system. Its goal is to help organizations shift from reactive incident response to proactive prevention, strengthening security while keeping privacy intact.

Company Size

51-200

Company Stage

Late Stage VC

Total Funding

$146.1M

Headquarters

Palo Alto, California

Founded

2017

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Simplify Jobs

Simplify's Take

What believers are saying

  • Ambient claims 95%+ false-alert reduction, a strong ROI message for buyers.
  • Over 150 verified threat signatures support broader, proactive incident prevention.
  • Enterprise adoption by Cisco, ServiceNow, SentinelOne, and TikTok expands referenceability.

What critics are saying

  • PACS incumbents can bundle similar AI features and compress Ambient's differentiation quickly.
  • False positives or missed incidents would damage trust and slow enterprise expansion.
  • Privacy backlash against continuous video monitoring would directly constrain customer adoption.

What makes Ambient.ai unique

  • Ambient.ai layers computer vision intelligence onto existing cameras and PACS infrastructure.
  • Its platform combines monitoring, access control, threat assessment, response, and investigations.
  • Pulsar is an edge-optimized reasoning Vision-Language Model built for physical security.

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Benefits

Healthcare - Medical premiums are covered up to 95% for employees. Dental and Vision is covered at 75%.

401(k) - Choose our pre-tax or Roth 401K plan options, via Guideline, to save for retirement

WFH Stipends - We offer monthly reimbursement for phone and monthly reimbursement for wifi

Time Off - Employees need to recharge their batteries: it improves productivity, creativity and overall job satisfaction! Get your work done, loop in your manager and take a reasonable amount of time off

Employee Resource Group - Join or start one!

Other - Employee Assistance Program and Legal Services

Early Stock Option Exercise

Life Insurance

Visa & Greencard Sponsorship

Growth & Insights and Company News

Headcount

6 month growth

0%

1 year growth

0%

2 year growth

0%
PR Newswire
Feb 18th, 2026
Ambient.ai doubles new ARR as agentic physical security hits inflection point

Ambient.ai, a physical security AI startup, has doubled its new annual recurring revenue in FY26 compared to FY25, with net revenue retention exceeding 140% as its customer base tripled. Multiple Fortune 100 clients have expanded to seven-figure contracts. The Redwood City-based company processes over 200 million video hours and 10 billion events daily through its platform. It recently launched Ambient Pulsar, the first edge-optimised reasoning Vision-Language Model for physical security, trained on over one million hours of enterprise video. Ambient.ai's clients include Cisco, ServiceNow, SentinelOne and TikTok. ServiceNow's deployment achieved a 94% false alarm reduction and saved 15,069 hours of manual triage. The company maintains a sub-1x burn multiple whilst delivering frontier-model reasoning performance at up to 50 times higher efficiency than general-purpose AI models.

PYMNTS
Apr 1st, 2025
Ambient Raises $74M for Bitcoin Replacement

Ambient has raised $74 million to develop a blockchain intended as a "replacement for Bitcoin," according to co-founder Travis Good. He argues Bitcoin's encryption is becoming obsolete, posing challenges for miners. Ambient's AI-infused network uses a proof-of-work mechanism, appealing to Bitcoin miners. Meanwhile, companies face challenges integrating secure and compliant stablecoin infrastructure for cross-border payments and finance, as noted by Bentzi Rabi, CEO of Utila.

CoinPulseHQ
Mar 31st, 2025
Ambient.ai Secures $7.2M for AI Blockchain

Ambient has secured $7.2 million in seed funding to advance its AI blockchain infrastructure. Key investors include Andreessen Horowitz, Amber Group, and Delphi Digital. This funding highlights the potential of Ambient's technology, which integrates AI deeply into blockchain systems for enhanced security, scalability, and smart contract capabilities. The investment will support technology development, ecosystem building, and community engagement as Ambient aims to revolutionize decentralized AI.

CriptoBR.net
Mar 31st, 2025
Ambient: New AI-powered blockchain aims to be the "successor to Bitcoin," says co-founder

Ambient, a startup that just raised $7,2 million from a16z and Delphi Digital, is betting big: It aims to replace Bitcoin with a blockchain that integrates artificial intelligence at its core.

Business Wire
Dec 12th, 2024
Ambient.ai Unveils New Vision for Autonomous Physical Security with "Ambient Intelligence" Advanced AI Models

Ambient.ai unveils new vision for autonomous physical security with "Ambient Intelligence" Advanced AI models.