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Part‑Time Remote Data Scientist – AI‑Driven Analytics & Machine Learning Engineer at careerzynith

Work from home Full-time role Hiring
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About careerzynith – Pioneering Intelligent Solutions in Healthcare Technology

careerzynith is a forward‑thinking leader in the health‑technology arena, dedicated to building an AIOps platform that enhances the resilience of the healthcare delivery ecosystem. Our mission is to empower the careerzynith Health System with predictive, prescriptive, and preventive AI solutions that anticipate issues before they impact patients, clinicians, and operations. As a part‑time, remote member of our innovative team, you will help shape the future of AI‑enabled health services, working alongside top‑tier data scientists, engineers, and domain experts.

Why This Role Matters

In today’s fast‑moving digital health landscape, the ability to detect anomalies, predict system failures, and recommend corrective actions in real time is a competitive advantage. This position sits at the intersection of data science, machine learning, and healthcare operations, giving you the chance to develop models that directly improve patient safety, reduce downtime, and drive operational excellence across the careerzynith network.

Key Responsibilities

  • Model Development & Deployment: Design, build, and scale AI and machine‑learning models—including deep learning, statistical learning, and reinforcement learning—to predict equipment failures, network outages, and performance bottlenecks within large‑scale data center environments.
  • Data Pipeline Engineering: Collaborate with data engineers to ingest, clean, and transform structured and unstructured data from cloud platforms (e.g., GCP, AWS) and on‑premise sources, ensuring high‑quality inputs for model training.
  • Root‑Cause Analysis: Apply advanced analytics and diagnostic techniques to identify underlying causes of system incidents, providing actionable insights to operations teams.
  • Cross‑Functional Collaboration: Work closely with product managers, software engineers, and healthcare domain experts to translate business requirements into technical specifications and deliver end‑to‑end AI solutions.
  • Documentation & Knowledge Sharing: Produce clear documentation, code comments, and technical guides; mentor junior team members and contribute to a culture of continuous learning.
  • Continuous Improvement: Evaluate model performance, conduct A/B testing, and iterate on algorithms to enhance accuracy, latency, and scalability.
  • Compliance & Security: Ensure all data handling and model deployment practices comply with industry regulations (HIPAA, GDPR) and internal security standards.

Essential Qualifications

  • Bachelor’s degree in Computer Science, Statistics, Mathematics, Engineering, or a related quantitative field (or equivalent practical experience).
  • Minimum of 2 years of hands‑on experience developing AI/ML solutions for large‑scale data environments.
  • Proficiency in at least one programming language commonly used in data science—Python, R, or SQL—and familiarity with libraries such as TensorFlow, PyTorch, scikit‑learn, or Spark ML.
  • Demonstrated expertise in data mining, statistical analysis, feature extraction, and model evaluation techniques.
  • Strong analytical mindset with the ability to translate complex business problems into data‑driven solutions.
  • Excellent written and verbal communication skills, capable of presenting technical concepts to non‑technical stakeholders.
  • Self‑motivated, collaborative, and able to thrive in a remote, part‑time environment while meeting project deadlines.

Preferred Qualifications & Additional Skills

  • Master’s or Ph.D. in a quantitative discipline such as Statistics, Machine Learning, or Applied Mathematics.
  • Experience working with cloud data platforms (Google Cloud Platform, Amazon Web Services, Azure) and managing data pipelines at petabyte scale.
  • Track record of building production‑grade AI models that deliver measurable business impact, particularly in healthcare or IT operations.
  • Knowledge of AIOps concepts, IT service management (ITSM), and monitoring tools (e.g., Splunk, Prometheus, Grafana).
  • Familiarity with containerization (Docker, Kubernetes) and CI/CD practices for model deployment.
  • Ability to mentor and provide technical guidance to broader teams, fostering a culture of data‑driven decision making.

Core Skills & Competencies

  • Technical Proficiency: Python, R, SQL, data‑engineering frameworks, machine‑learning libraries, and cloud services.
  • Analytical Acumen: Statistical modeling, hypothesis testing, anomaly detection, and predictive analytics.
  • Problem‑Solving: Creative thinking to devise innovative solutions from ambiguous requirements.
  • Collaboration: Ability to work effectively with multidisciplinary teams, sharing knowledge and aligning on goals.
  • Attention to Detail: Rigorous testing, validation, and documentation of models and pipelines.
  • Adaptability: Comfortable navigating fast‑changing priorities and emerging technologies.

Career Growth & Learning Opportunities

careerzynith invests heavily in the professional development of its talent. As a part‑time remote data scientist, you will have access to:

  • Mentorship from senior AI architects and industry veterans.
  • Sponsored certifications in cloud platforms (e.g., Google Cloud Professional Data Engineer, AWS Machine Learning Specialty).
  • Opportunities to present at internal AI symposiums and external conferences.
  • Cross‑training programs that broaden expertise in software engineering, DevOps, and healthcare informatics.
  • A clear career ladder that can lead to senior data scientist, AI lead, or product strategy roles within careerzynith.

Work Environment & Culture at careerzynith

Our culture is built on three pillars: Innovation, Collaboration, and Impact. We foster an inclusive environment where diverse perspectives are celebrated, and every team member is empowered to contribute ideas that shape the future of health technology. Remote work is supported with robust communication tools, regular virtual coffee chats, and quarterly in‑person meet‑ups to strengthen team bonds.

Key cultural highlights include:

  • Flexible scheduling that respects work‑life balance, especially for part‑time contributors.
  • Transparent leadership that shares company vision, performance metrics, and strategic priorities.
  • Recognition programs that celebrate technical achievements, innovative thinking, and community involvement.
  • Commitment to ethical AI, ensuring that our models are fair, explainable, and aligned with patient safety standards.

Compensation, Perks & Benefits

careerzynith offers a competitive hourly rate of $25 per hour for part‑time remote work, complemented by a comprehensive benefits package that includes:

  • Health, dental, and vision insurance options (eligible after a short waiting period).
  • Retirement savings plan with company matching contributions.
  • Paid time off, holidays, and flexible sick leave.
  • Professional development stipend for courses, conferences, and certifications.
  • Access to cutting‑edge AI tools, cloud resources, and collaborative platforms.
  • Employee assistance programs and wellness resources.

How to Apply

If you are passionate about leveraging AI to transform healthcare operations, thrive in a remote, part‑time setting, and are eager to work with a dynamic team at careerzynith, we want to hear from you. Submit your resume, a brief cover letter outlining your relevant experience, and any portfolio or GitHub links that showcase your AI/ML work.

Apply Job!

Join careerzynith – Shape the Future of AI‑Powered Healthcare

At careerzynith, your work will directly influence the reliability and efficiency of critical health‑care infrastructure. By joining our team, you become part of a mission‑driven organization that values curiosity, technical excellence, and the well‑being of patients worldwide. Take the next step in your career and help us build a smarter, safer, and more resilient health ecosystem.

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