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Remote Edge Ai Machine Learning Jobs in Missouri

Deploy and support machine learning workloads while assisting with lifecycle management across ... Flexible remote working environment with a high level of ownership. * Collaborative, innovative ...

$48.50 - $64/hr

Opportunity to work on impactful AI infrastructure projects shaping the future of machine learning. * Flexible work options, including remote opportunities across Europe. * High level of ownership ...

The Data Team, which covers the full data spectrum of Machine Learning, Analysis and Data ... Where you'll be This role is based in Amsterdam but we can offer remote work from the following ...

This is an exciting opportunity to contribute to cutting-edge AI and data-driven initiatives while ... Knowledge of machine learning infrastructure, scientific data platforms, regulated industries, or ...

$40 - $55/hr

Working alongside backend, machine learning, and product teams, you will design seamless AI-driven ... Fully remote full-time position with the flexibility to work from Europe. * Opportunity to build ...

Location - Remote (Europe) How You'll Make an Impact: As a Staff Machine Learning Engineer , you ... through AI-driven insights, transforming traditional hospitality with cutting-edge predictive ...

Build and optimize machine learning models using advanced molecular AI techniques, including ... Fully remote-first working model with flexibility to work from the location that suits you best.

$85K - $116K/yr

... to cutting-edge AI technologies in a collaborative, international, and fast-paced remote ... Experience with AI infrastructure, machine learning platforms, GPU environments, cloud ...

This role offers the opportunity to work with cutting-edge AI technologies, integrations, and automation platforms while contributing to impactful initiatives in a collaborative, remote-first ...

... edge AI technologies. In this highly collaborative role, you will own features end-to-end, from ... Interest in artificial intelligence, machine learning workflows, developer tools, or data-intensive ...

$95K - $131K/yr

... a Machine Learning Engineer with a proven track record of successful project delivery * In-depth knowledge of cloud platform, preferably Google Cloud Platform services, particularly Vertex AI ...

... and machine learning, you will help shape the future of AI platform capabilities. The position ... Fully remote work environment with flexibility across Europe. * Opportunity to work on advanced AI ...

Experience building interfaces for AI or machine learning systems is a plus. * Familiarity with ... Fully remote work environment with flexibility to work from anywhere. * High level of autonomy and ...

$128K - $133K/yr

Working in a collaborative, remote-first environment, you will drive the evolution of modern AI ... Exposure to cutting-edge AI technologies, including LLMs, inference infrastructure, GPU computing ...

$94K - $124K/yr

Fully remote work environment with flexible working hours. * Opportunity to work on large-scale infrastructure supporting global AI and machine learning communities. * Competitive compensation ...

Showing results 21-40

Remote Edge Ai Machine Learning information

What is the difference between Remote Edge Ai Machine Learning vs Data Scientist?

AspectRemote Edge Ai Machine LearningData Scientist
Required CredentialsBachelor's or Master's in CS, AI, or related fields; experience with ML frameworksBachelor's or Master's in Statistics, CS, or related fields; strong analytical skills
Work EnvironmentRemote, often on edge devices or IoT systemsTypically office or remote, analyzing data in cloud or on-premises
Industry UsageAI development, IoT, autonomous systemsBusiness analytics, research, product development

Remote Edge Ai Machine Learning specialists focus on deploying ML models on edge devices, often requiring knowledge of embedded systems. Data Scientists analyze large datasets to extract insights, usually working in cloud environments. While both roles require strong ML fundamentals, their work environments and application areas differ significantly.

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Sr AI Engineer / Data Scientist

Koantek

Chesterfield, MO • Remote

Full-time

Re-posted 6 days ago


Job description

Location: United States - Remote Employment Type: Full-Time and Contract We are seeking an experienced and highly technical Data Scientist to join our customer-facing consulting team. This remote role requires a blend of advanced Machine Learning (ML) expertise, deep knowledge of MLOps principles, and a proven track record in client-facing implementation. The successful candidate will be instrumental in designing, deploying, and maintaining production-grade ML solutions, including advanced Generative AI and Natural Language Processing (NLP) models, for our diverse client base.Key Responsibilities Serve as a primary technical consultant, leading and executing end-to-end ML project implementations directly with clients, translating complex business problems into robust technical solutions

Exhibit excellent communication, presentation, and stakeholder management skills to clearly articulate technical findings, proposals, and project status to both technical and non-technical audiences. Design, build, and maintain production-grade ML pipelines, focusing on continuous integration, continuous delivery (CI/CD), and advanced MLOps practices to ensure reliability and scalability of models. Implement and optimize cutting-edge Generative AI and NLP applications, demonstrating hands-on experience with technologies like Retrieval Augmented Generation (RAG) and Large Language Models (LLMs) in a production setting.

Manage underlying solution infrastructure, demonstrating proficiency in technologies such as Docker, pipeline orchestrators, and database systems. Leverage expertise in distributed computing frameworks, specifically in scalable machine learning and high-performance data processing (e.g., using technologies like Apache Spark). Contribute to the strategic growth of the ML Practice Team, including participation in technical assignments and knowledge transfer activities

Ensure all client engagements and training activities are properly documented and reported via designated partner platforms. Required Qualifications 4+ years of hands-on professional experience developing, deploying, and managing Machine Learning models, with a mandatory requirement for productionizing and maintaining models in a live environment. 3+ years of experience in a customer-facing consulting or solutions architect role, focused on technical implementation and delivery.

Excellent verbal and written communication skills for effective client and internal team interaction. Expertise in MLOps lifecycle management, including model versioning, testing, monitoring, and automated deployment best practices. Demonstrable experience with infrastructure management, encompassing containerization (Docker) and data pipeline orchestration.

Deep understanding of programming for data-intensive and scalable ML applications. Proven experience in deploying and managing Generative AI and NLP solutions for client applications. Preferred Qualifications Hands-on experience with modern ML platform stacks, such as Databricks MLOps Stacks.

Knowledge of specific tools and techniques used in scalable machine learning and large-scale data processing. Demonstrated commitment to continuous learning in emerging ML fields, such as LLMs and GenAI application architectures. Requirements Hands-on experience with modern ML platform stacks, such as Databricks MLOps Stacks.

Knowledge of specific tools and techniques used in scalable machine learning and large-scale data processing. Demonstrated commitment to continuous learning in emerging ML fields, such as LLMs and GenAI application architectures. Requirements Required Qualifications 4+ years of hands-on professional experience developing, deploying, and managing Machine Learning models, with a mandatory requirement for productionizing and maintaining models in a live environment.

3+ years of experience in a customer-facing consulting or solutions architect role, focused on technical implementation and delivery. Excellent verbal and written communication skills for effective client and internal team interaction. Expertise in MLOps lifecycle management, including model versioning, testing, monitoring, and automated deployment best practices.

Demonstrable experience with infrastructure management, encompassing containerization (Docker) and data pipeline orchestration. Deep understanding of programming for data-intensive and scalable ML applications. Proven experience in deploying and managing Generative AI and NLP solutions for client applications.

Preferred Qualifications Hands-on experience with modern ML platform stacks, such as Databricks MLOps Stacks. Knowledge of specific tools and techniques used in scalable machine learning and large-scale data processing. Demonstrated commitment to continuous learning in emerging ML fields, such as LLMs and GenAI application architectures.

Requirements Hands-on experience with modern ML platform stacks, such as Databricks MLOps Stacks. Knowledge of specific tools and techniques used in scalable machine learning and large-scale data processing. Demonstrated commitment to continuous learning in emerging ML fields, such as LLMs and GenAI application architectures.

Benefits Work on frontier AI and data projects with Fortune 500 companies Contribute to IP, reusable accelerators, and real business impact Be part of a high-performance, engineering-first culture