Remote AI & Machine Learning Jobs

Browse remote AI jobs that let you work from anywhere. Remote ML engineer, AI researcher, and prompt engineer positions.

644
Open Positions
$197K
Avg. Salary

Data updated weekly. Last refreshed 2026-08-20.

AI Software Engineer
AI Software Engineer Intern
nan
Remote
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AI/ML Engineer
Senior AI Validation Engineer
Cloud Destinations
$187K - $208K Remote
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Data Scientist
Senior Data Scientist - Machine Learning
General Dynamics Information Technology
$123K - $166K Remote
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AI/ML Engineer
Chief AI
Galaxy Pharmaceuticals
$250K - $350K Remote
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AI/ML Engineer
Sr Kubernetes Platform Contractor, AI Infrastructure (Exp 15+yrs)
Cloud Destinations
$187K - $208K Remote
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AI/ML Engineer
AI Workflow Consultant
nan
$104K - $126K Remote
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AI/ML Engineer
AI Solutions Consultant (Remote)
Blue Acorn iCi
$150K - $203K Remote
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AI/ML Engineer
AI Workforce Enablement Consultant (Contract) | Remote
Progressive Leasing
Remote
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AI/ML Engineer
Agentic AI Engineering Architect (Remote -US)
OMG Technology
Remote
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Data Scientist
Sr. Data Scientist, Applied AI/ML
CrowdStrike
$140K - $215K Remote
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Data Scientist
Data Scientist, Applied AI/ML
CrowdStrike
$120K - $180K Remote
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AI/ML Engineer
Sr. Machine Learning Engineer (Remote)
CrowdStrike
$140K - $215K Remote
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AI/ML Engineer
Director, AI Security Science (Remote)
CrowdStrike
$195K - $290K Remote
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AI/ML Engineer
Postdoc: Millimeter-Wave Radar Systems, Remote Sensing, and Machine Learning
NASA Jet Propulsion Laboratory
Remote
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Research Scientist
AI Research Scientist (Remote)
CrowdStrike
$140K - $215K Remote
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AI/ML Engineer
Senior AI Security Engineer
World Wide Technology
$116K - $145K Remote
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AI/ML Engineer
Principal Engineer, Workforce, Customer & Agentic Identity
Allstate Insurance
$199K - $274K Remote
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AI/ML Engineer
Senior Director, AI & Data Science Solutions
Otsuka
$230K - $345K Remote
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Research Scientist
Principal Applied Scientist, Agentic AI
Zillow
$181K - $305K Remote
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AI/ML Engineer
Associate Director, Data Governance, FAIR, and AI-Readiness
Amgen
Remote
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AI/ML Engineer
Senior Data Analyst – AI/ML & Analytics
Onyx Government Services, LLC
$150K - $170K Remote
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AI/ML Engineer
Client Director (Hunter) - Data & AI - Manufacturing
Evalueserve.com Ltd
$150K - $200K Remote
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AI/ML Engineer
Implementation Specialist - AI Solutions
Circana
Remote
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AI/ML Engineer
Director, AI Engagements and Operations (Remote)
CrowdStrike
$195K - $290K Remote
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AI/ML Engineer
IT Operations Automation & AI Ops Engineer
V2X
$145K - $235K Remote
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AI/ML Engineer
GCP Generative AI Application Engineer
DATA PULSE TECH AI LLC
$145K - $187K Remote
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AI/ML Engineer
Computer Vision Engineer
Augusta HiTech Software
Remote
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AI/ML Engineer
AI PLATFORM ENGINEER
Acuhuman
$166K - $187K Remote
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AI/ML Engineer
Lead SWE, AI Dev/IT Operations - Remote or Hybrid in DC or MN
Optum
$112K - $193K Remote
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AI/ML Engineer
Senior Electrical Engineer – MV AI UPS Data Centers & Storage
ONENERGY
Remote
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AI/ML Engineer
B2B Sales Executive – Fleet Leads AI | Uncapped Commission
nan
$60K - $144K Remote
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AI/ML Engineer
Staff AI Security Scientist
CrowdStrike
$235K - $350K Remote
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AI/ML Engineer
Senior AI ML Engineer - Remote
Optum
$120K - $214K Remote
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AI/ML Engineer
AI Data Platform Engineer
BV Teck
$100K - $170K Remote
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AI Product Manager
AI Product Manager (Remote)
Retensa
$90K - $120K Remote
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AI/ML Engineer
Data Science Senior Advisor (Pricing & Underwriting) - Remote
The Cigna Group
$131K - $218K Remote
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AI/ML Engineer
AI Scientific Business Analyst
Synchron Technologies LLC
$103K - $125K Remote
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AI/ML Engineer
Artificial Intelligence Solutions Principal Specialist
Zimmer Biomet
$215K - $270K Remote
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Data Scientist
Operations Research Principal Data Scientist
Zimmer Biomet
$140K - $175K Remote
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AI/ML Engineer
Staff AI Scientist
oura
$233K - $267K Remote
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AI/ML Engineer
Strategic Pricing Analyst, AI Products
Blackbaud
$87K - $114K Remote
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AI/ML Engineer
Staff Machine Learning Engineer III
Indeed
$163K - $341K Remote
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Data Scientist
Data Scientist
NEX Inc.
$140K - $165K Remote
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AI/ML Engineer
Forward Deployed Engineer & Agentic Workflow Engineer – AI Innovation & Transformation
CrossCountry Consulting
Remote
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AI/ML Engineer
Director of AI
Direct Travel
Remote
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AI/ML Engineer
Lead AI Engineer - Remote
Main Sail, LLC
$176K - $197K Remote
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Data Scientist
Data Scientist - Remote
Persist Brands
$70K - $90K Remote
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AI/ML Engineer
AI Application Security Architect
ACV Auctions
$200K - $250K Remote
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AI/ML Engineer
Data Science Consultant
Rippling
Remote
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AI/ML Engineer
Junior AI/ML Engineer
TensorOps
Remote
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Showing 50 of 644 jobs

About This Role

AI job market dashboard showing open roles by category

AI/ML Engineers build and deploy machine learning models in production. They work across the full ML lifecycle: data pipelines, model training, evaluation, and serving infrastructure. The role has evolved significantly over the past two years. Where ML Engineers once spent most of their time on model architecture, the job now tilts heavily toward inference optimization, cost management, and integrating LLM capabilities into existing systems. Companies want engineers who can ship production systems, and the experimenter-only role is fading fast.

Day-to-day, you're writing training pipelines, debugging data quality issues, setting up evaluation frameworks, and figuring out why your model performs differently in staging than it did on your dev set. The best ML engineers are obsessive about reproducibility and measurement. They instrument everything. They know that a model is only as good as the data feeding it and the infrastructure serving it.

Across the 4,317 AI roles we're tracking, AI/ML Engineer positions make up 70% of the market.

Demand for AI/ML Engineers has been strong and consistent. Unlike some AI roles that spike with hype cycles, ML engineering is a foundational need. Every company deploying AI models needs people who can keep them running, and the gap between research prototypes and production systems keeps growing.

Remote Work Context

Remote AI roles pay a median of $180,000 across 1,196 positions. About 15% of all AI roles offer remote work.

Compensation Benchmarks

AI/ML Engineer roles pay a median of $214,900 based on 6,420 positions with disclosed compensation.

Across all AI roles, the market median is $215,000. Top-quartile compensation starts at $266,300. The 90th percentile reaches $320,790. For comparison, the highest-paying categories include AI Safety ($287,500) and Research Engineer ($272,100). By seniority level: Entry: $110,000; Mid: $194,400; Senior: $227,400; Director: $274,554; VP: $241,000.

AI Hiring Overview

The AI job market has 4,317 open positions tracked in our dataset. By seniority: 138 entry-level, 2,071 mid-level, 1,655 senior, and 453 leadership roles (Director, VP, C-Level). Remote roles make up 15% of the market (635 positions). The remaining 3,657 roles require on-site or hybrid attendance.

The market median for AI roles is $215,000. Top-quartile compensation starts at $266,300. The 90th percentile reaches $320,790. Highest-paying categories: AI Safety ($287,500 median, 34 roles); Research Engineer ($272,100 median, 227 roles); AI Engineering Manager ($244,000 median, 23 roles).

Demand for AI/ML Engineers has been strong and consistent. Unlike some AI roles that spike with hype cycles, ML engineering is a foundational need. Every company deploying AI models needs people who can keep them running, and the gap between research prototypes and production systems keeps growing.

Career Path

Common paths into AI/ML Engineer roles include Data Scientist, Software Engineer, Research Engineer.

From here, career progression typically leads toward ML Architect, AI Engineering Manager, Principal ML Engineer.

The fastest path into ML engineering is through software engineering with a self-directed ML education. A CS degree helps, but production engineering skills matter more than academic credentials. Build something that works, deploy it, and measure it. That portfolio project is worth more than a Coursera certificate. For career growth, the fork comes around the senior level: go deep on technical complexity (staff/principal track) or move into managing ML teams.

What the Work Looks Like

A typical week might include: debugging a data pipeline that's silently dropping 3% of training examples, running A/B tests on a new model version, writing documentation for a feature flag system that lets you roll back model deployments, and reviewing a junior engineer's PR for a new evaluation metric. Meetings tend to be cross-functional since ML touches product, engineering, and data teams.

Demand for AI/ML Engineers has been strong and consistent. Unlike some AI roles that spike with hype cycles, ML engineering is a foundational need. Every company deploying AI models needs people who can keep them running, and the gap between research prototypes and production systems keeps growing.

What to Expect in Interviews

Expect system design questions around ML pipelines: how you'd build a training pipeline for a specific use case, handle data drift, or design A/B testing infrastructure for model deployments. Coding rounds typically involve Python, with emphasis on data manipulation (pandas, numpy) and algorithm implementation. Take-home assignments often ask you to build an end-to-end ML pipeline from raw data to deployed model.

When evaluating opportunities: Companies that are serious about AI/ML hiring tend to post specific infrastructure details in the job description: the frameworks they use, their model serving stack, their data pipeline tools. Vague postings that just say 'ML experience required' without specifics are often companies that haven't figured out what they need yet.

Skills in Demand for This Role

Python (52% of roles) Aws (28% of roles) Azure (22% of roles) Rag (21% of roles) Gcp (15% of roles) Pytorch (15% of roles) Prompt Engineering (14% of roles) Kubernetes (13% of roles)

Python and PyTorch dominate the requirements. Most roles expect experience with cloud platforms (AWS, GCP, or Azure) and familiarity with ML frameworks like TensorFlow or JAX. RAG (Retrieval-Augmented Generation) has become a top-3 skill requirement as companies integrate LLMs into their products. Docker and Kubernetes show up in about a third of postings, reflecting the production focus of the role.

Beyond the core stack, employers increasingly want experience with experiment tracking tools (MLflow, Weights & Biases), feature stores, and vector databases. Fine-tuning experience is valuable but less common than you'd think from reading Twitter. Most production LLM work is RAG and prompt engineering, not fine-tuning. If you have both, you're in a strong position.

Companies that are serious about AI/ML hiring tend to post specific infrastructure details in the job description: the frameworks they use, their model serving stack, their data pipeline tools. Vague postings that just say 'ML experience required' without specifics are often companies that haven't figured out what they need yet.

The AI Job Market Today

The AI job market spans 4,317 open positions across 15 role categories. The largest categories by volume: AI/ML Engineer (3,004), Data Scientist (345), AI Software Engineer (309). These three account for the majority of open positions, though smaller categories often have higher per-role compensation because of specialized skill requirements.

The seniority mix tells a story about where AI teams are in their maturity. Entry-level roles (138) are outnumbered by mid-level (2,071) and senior (1,655) positions, reflecting that most companies are past the 'build a team from scratch' phase and need experienced engineers who can ship production systems. Leadership roles (Director, VP, C-Level) total 453 positions, representing the bottleneck between technical execution and organizational strategy.

Remote work availability sits at 15% of all AI roles (635 positions), with 3,657 requiring on-site or hybrid attendance. The remote share has stabilized after the post-pandemic correction. Senior and specialized roles (Research Scientist, ML Architect) are more likely to be remote-eligible than entry-level positions, partly because experienced hires have more negotiating power and partly because these roles require less hands-on mentorship.

AI compensation is structured in clear tiers. The market median sits at $215,000. Top-quartile roles start at $266,300, and the 90th percentile reaches $320,790. These figures include base salary with disclosed compensation. Total compensation (including equity, bonuses, and sign-on) runs 20-40% higher at companies that offer those components.

Category matters for compensation. AI Safety roles lead at $287,500 median, while Prompt Engineer roles sit at $145,000. The spread between highest and lowest-paying categories reflects the premium on specialized technical skills versus broader analytical roles.

The most in-demand skills across all AI postings: Python (2,249 postings), Aws (1,224 postings), Azure (938 postings), Rag (915 postings), Gcp (660 postings), Pytorch (640 postings), Prompt Engineering (624 postings), Kubernetes (559 postings). Python dominates, appearing in the vast majority of role descriptions regardless of category. Cloud platform experience (AWS, GCP, Azure) is the second most common requirement. The newer entrants to the top skills list (RAG, vector databases, LLM APIs) reflect the shift from traditional ML toward generative AI applications.

Frequently Asked Questions

AI Pulse currently tracks 644 AI and machine learning job openings in Remote. This includes roles like AI engineer, ML engineer, data scientist, and prompt engineer positions.
Based on job postings with disclosed compensation, AI roles in Remote pay an average of $197K. Actual salaries vary based on experience, specific skills (like RAG or LangChain), and company size.
It depends on company policy. Some companies pay location-agnostic rates (same salary regardless of location), while others use geographic pay bands. Based on our data, remote AI roles average 5-10% below equivalent Bay Area in-office roles, but offer significant cost-of-living advantages.
Remote AI positions typically emphasize self-directed skills: strong async communication, experience with remote collaboration tools, and ability to ship independently. Technical skills like Python, RAG systems, and LangChain remain important regardless of work location.

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