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  • Staff Machine Learning Engineer

    Sage (Atlanta, GA)



    Apply Now

    Staff Machine Learning Engineer

    Job Description:

    Sage AI is a nimble team within Sage, building innovative services and solutions using generative AI and machine learning to turbocharge our users' productivity. The Sage AI team builds capabilities to help businesses make better decisions through data-powered automation and insights.

     

    We are currently hiring a Staff Machine Learning Engineer to help us build machine learning solutions that will provide insights to empower businesses and help them succeed. As a part of our cross-functional team including data scientists and engineers you will help steer the direction of the company’s Artificial Intelligence and Machine Learning initiatives.

     

    If you share our excitement for applying artificial intelligence and machine learning, value a culture of continuous improvement and learning and are excited about working with cutting edge technologies, apply today!

     

    This is a hybrid role – three days per week in our Atlanta or Lawrenceville office.

    Key Responsibilities:

    What You’ll Do:

    Responsibilities

    • Design and implement product features and services that use AI and ML to augment and simplify our customers' workflows

    • Develop our internal ML platform to support our machine learning systems and our own efficiency

    • Monitor and optimize the quality and performance of our models, services, and tools

    • Collaborate with our AI Platform team to extend the capabilities of our machine learning platform

    • Design and write robust production-quality code to support our machine learning systems

    • Build and operate pipelines for accessing and enriching data for machine learning

    • Train, tune, and ship models

    • Mentor other ML engineers, software engineers, and data scientists in best practices

    • Work with product managers and data scientists to translate product/business problems into tractable machine learning solutions

    What You’ll Bring:

    Requirements

    • Keen interest in artificial intelligence and machine learning and extensive practical experience with it

    • Expert knowledge and experience with relevant programming languages (incl. Python), frameworks (incl. Pycharm, OpenAI, HuggingFace, Spark, Azure, AWS)

    • Extensive experience with cloud environments (AWS, Azure, GCP)

    • Ability to write highly performant code working with big data

    • Bachelor’s degree, preferably in a field that uses data science / machine learning techniques (e.g. computer science/engineering, statistics, applied math)

    • Fluency in data fundamentals: SQL, data manipulation using a procedural language, statistics, experimentation, and predictive modelling

    • Proven quantitative and analytical skills with significant experience with data science tools

    • Ability to communicate complex ideas in machine learning to non-technical stakeholders

    Preferred Skills:

    • Experience with one or more ML Ops frameworks — MLFlow, Kubeflow, Azure ML, Sagemaker

    • Demonstrated theoretical foundations in linear algebra, probability theory, or optimization

    • Experience and training in finance and operations domains

    • Deep experience with ML approaches: deep learning, generative AI, large language models, logistic regression, gradient descent

    • Experience wrangling complex and diverse data to solve real-world problems

    Plenty of perks:

    • Competitive salaries

    • Comprehensive health, dental and vision coverage

    • 401(k) retirement match (100% matching up to 4%)

    • 32 days paid time off (21 personal days, 10 national holidays, 1 floating holiday)

    • 18 weeks paid parental leave for birth, adoption or surrogacy offered 1 year after start date

    • 5 days paid yearly to volunteer (through Sage Foundation)

    • $5,250 tuition reimbursement per calendar year starting 6 months after hire date

    • Sage Wellness Rewards Program ($600 wellness credit and $360 fitness reimbursement annually) Library of on-demand career development options and ongoing training offerings

    What it’s like to work at Sage:

    Careers homepage -https://www.sage.com/en-us/company/careers/

     

    Glassdoor reviews -https://www.glassdoor.com/Reviews/Sage-Reviews-E1150.htm

     

    LinkedIn -https://www.linkedin.com/company/sage-software

     

    You will have an opportunity to work in an environment where ML engineering is central to what we do. The products we build are breaking new ground, and we have a focus on providing the best environment to allow you to do what you do best - solve problems, collaborate with your team and push first class software. Our distributed team is spread across multiple continents, we promote an open diverse environment, encourage contributions to open-source software and invest heavily in our staff. Our team is talented, capable, and inclusive. We know that great things can only be done with great teams and look forward to continuing this direction.

    #LI-NT1

    Function:

    Product

    Country:

    United States

    Office Location:

    Atlanta

    Work Place type:

    Hybrid

     

    Advert

     

    Working at Sage means you’re supporting millions of small and medium sized businesses globally with technology to work faster and smarter. We leverage the future of AI, meaning business owners spend less time doing routine tasks, like entering invoices and generating reports, and more time pursuing their ambitions.

     

    Our colleagues are the best of the best. Because to achieve extraordinary outcomes, we need extraordinary teams. This means infusing Sage with people who knock down barriers, continuously innovate, and want to experience their potential.

     

    Learn more about working at Sage:sage.com/en-us/company/careers/working-at-sage/

     

    Watch a video about our culture:youtube.com/watch?v=h1-vs3zIpnc

     

    We celebrate individuality and welcome you to join us if you embrace all backgrounds, identities, beliefs, and ways of working. If you need support applying, reach out [email protected].

     

    Learn more about DEI at Sage:sage.com/en-us/company/careers/diversity-equity-and-inclusion/

     

    Equal Employment Opportunity (EEO)

     

    Sage is committed to Equal Employment Opportunity and providing reasonable accommodations to applicants with physical and/or mental disabilities.

     

    In order to provide equal employment and advancement opportunities to all individuals, employment decisions at Sage will be based on merit, qualifications, and abilities. Sage does not discriminate in employment opportunities or practices on the basis of race, color, religion, sex, national origin, age, protected disability, veteran status, sexual orientation, gender identity, genetic information, or any other characteristic protected by applicable law.

     


    Apply Now



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