August 17, 2026

Marjolaine Pierre's mobility routine for running

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Running efficiency in triathlon is not just about fitness. It is about whether your body can transition from hours in the aero position into a full, powerful running stride from the first step. The bike compresses the hip flexors under sustained load and shortens the posterior chain. When you dismount and need to run, your body must immediately access ranges of motion it hasn't used in hours. If the hip flexors cannot extend fully, the stride shortens. If the hamstrings cannot lengthen through the swing phase, ground contact mechanics break down. If ankle dorsiflexion is restricted, force absorption is compromised at every step. These are not problems that resolve themselves in the first kilometer.

Marjolaine Pierre, a two-time World Triathlon Long Distance champion and 4th-place finisher at the 2024 Ironman World Championship in Nice, built this routine around those exact demands. Each exercise targets a specific physical requirement of efficient running mechanics so your body is ready to move well from the first stride.

Running activation mobility routine

This routine is built around what running in triathlon actually demands from your body: hip flexor extensibility to achieve full hip extension with each stride, hamstring length to allow an efficient swing phase, ankle mobility to absorb ground contact forces effectively, and hip rotational control to maintain a strong, upright running posture under fatigue. Each exercise targets one or more of those requirements directly.

  • Alternating Samson stretch to develop active hip flexor extensibility and lateral chain length in the positions that the drive phase of the running stride demands.

  • Alternating dynamic hamstring stretch to develop posterior chain extensibility and hip flexor coordination through a dynamic pattern that directly rehearses the swing phase mechanics of running.

  • Cossack squat to develop hip adductor and external rotator range under load, supporting the frontal plane hip control that maintains efficient running mechanics under fatigue.

  • Alternating calf activation to develop ankle mobility and calf neuromuscular readiness, improving the range and control available at ground contact and toe-off.

  • Active deep squat to develop active hip flexion range and lumbopelvic control in the full range positions that running cadence demands across longer efforts.

  • Standing hip rotations to develop hip rotational range and the proprioceptive control required for rotational stability in single-leg positions during the running stride.

  • Alternating leg swings to prepare the hip for the repeated sagittal plane flexion and extension cycle of running and restore neuromuscular readiness across the full stride range.

  • Alternating lateral leg swings to develop hip abductor and adductor range in the frontal plane, supporting the lateral hip stability that running mechanics require at every ground contact.

Together, these movements address the specific physical limitations that reduce running efficiency in triathlon. By building both range and active control through the hip flexors, hamstrings, ankles, and hip rotators, they support stronger stride mechanics and more consistent output from the first step off the bike.

Exercise 1/8: alternating Samson stretch

Focus Details
Timing Repeat for 1 min.
Stimulus Stretching at the back of the thighs.
Instructions • Standing. Abs engaged.
• Hip and knee bent at 90°. Full knee extension.
• Controlled movements, switching legs with each repetition.
Targeted areas Hamstrings
Equipment required None

Exercise 2/8: alternating dynamic hamstring stretch

Focus Details
Timing Repeat for 1 min.
Stimulus Stretching at the back of the thighs.
Instructions • Standing. Abs engaged.
• Hip and knee bent at 90°. Full knee extension.
• Controlled movements, switching legs with each repetition.
Targeted areas Hamstrings
Equipment required None

Exercise 3/8: cossack squat

Focus Details
Timing Repeat for 1 min.
Stimulus Stretching of the adductors.
Instructions • Keep foot flat and heel in contact with the ground, knee tracking toes.
• Extend other leg and keep back flat.
• Crossover from one leg to the other, slowly and with control.
Targeted areas Adductors
Hamstrings
Ankles
Equipment required None

Exercise 4/8: alternating calf activation

Focus Details
Timing Repeat for 1 min.
Stimulus Calf activation.
Instructions • Hands against a support, ensuring good balance.
• Phase 1: contract your calf.
• Phase 2: slowly.
Targeted areas Calves
Equipment required None

Exercise 5/8: active deep squat

Focus Details
Timing Repeat for 1 min.
Stimulus Tension in the hips and thighs.
Instructions • In squat position, upright torso, engaged abdominals.
• Tip of the knee touches the ground, using the foot as a pivot.
• Dynamic alternating movements between the right and left knee.
Targeted areas Hips
Glutes
Equipment required None

Exercise 6/8: standing hip rotations

Focus Details
Timing Repeat for 1 min.
Stimulus Tension in the hip.
Instructions • Standing position, core engaged, hip and knee flexed at 90°.
• Knee brought outward to the maximum before placing the foot back down.
• Return movement performed at the same pace, alternating sides with each repetition.
Targeted areas Hips
Equipment required None

Exercise 7/8: alternating leg swings

Focus Details
Timing Repeat for 1 min.
Stimulus Stretching in the hamstrings and hip flexors.
Instructions • Using support, one foot on the ground, the other lifted.
• Wide leg swing from front to back.
• 3 back and forth movements per side, alternating.
Targeted areas Hips
Hamstrings
Equipment required None

Exercise 8/8: alternating lateral leg swings

Focus Details
Timing Repeat for 1 min.
Stimulus Stretching in the adductors.
Instructions • Using support, one foot on the ground, the other lifted.
• Wide leg swing from inside to outside.
• 3 back and forth movements per side, alternating.
Targeted areas Hips
Adductors
Equipment required None
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What running in triathlon actually demands from your body

Running is the final discipline in triathlon and the one where the accumulated physical cost of the swim and bike is most apparent. Stride mechanics that would hold up easily in a standalone run begin to break down after hours of prior effort, and the specific restrictions created by the aero position on the bike make the T2 transition one of the most physically demanding moments in the race. The mobility demands of running in triathlon are therefore greater than those of running in isolation because the body must overcome adaptations developed by the preceding disciplines before it can move efficiently.

Physical demand Why it limits running in triathlon How it presents
Hip flexor extensibility Full hip extension during the drive phase of each stride is required for an efficient running gait. After hours in the aero position, the hip flexors are held in sustained compression and lose extensibility. When they cannot lengthen sufficiently, the pelvis anteriorly tilts to compensate, shortening the stride and increasing the energy cost of every kilometer. Shortened stride length off the bike, anterior pelvic tilt increasing under fatigue, lower back discomfort accumulating through the run leg.
Hamstring length and active range The swing phase of the running stride requires the hamstrings to lengthen dynamically as the leg drives forward. Restricted hamstring length reduces stride length, increases ground contact time, and forces compensatory movement through the lumbar spine and hip flexors. Reduced forward leg drive, increased ground contact time, hip flexor fatigue developing earlier in the run leg.
Ankle dorsiflexion Sufficient ankle dorsiflexion allows the shin to move forward over the foot during ground contact, enabling efficient force absorption and transfer. Restricted dorsiflexion reduces the range available at contact, increasing the impact stress transferred to the knee and hip and reducing the efficiency of toe-off. Increased impact at ground contact, knee and hip discomfort that accumulates through the run, and reduced push-off power at toe-off.
Hip rotational control Single-leg stability during the stance phase of each stride requires active control of the hip abductors and rotators. Without this, the pelvis drops on the swing-leg side with each stride, a pattern known as Trendelenburg gait, which increases the energy cost and mechanical stress on the hip and lower back. Pelvic drop visible on each stride, lateral trunk shift to compensate, hip and lower back fatigue increasing disproportionately through the run leg.

These demands compound across the run leg of a triathlon. Restrictions that are manageable at the start of the run become significant mechanical breakdowns as fatigue accumulates over the remaining distance. Preparing these capacities specifically before racing or before run training is what allows mechanics to hold up across the full effort.

FAQs

What does running in triathlon require from your mobility?
Running in triathlon requires four primary physical capacities: hip flexor extensibility to achieve full hip extension in the drive phase after hours in the aero position, hamstring length for an efficient swing phase and full stride length, ankle dorsiflexion to absorb ground contact forces effectively and transfer power at toe-off, and hip rotational control for single-leg pelvic stability through the stance phase of each stride. These demands are all greater in triathlon than in standalone running because the aero position actively creates restrictions that must be overcome before efficient running mechanics are possible.

Why does the aero position on the bike affect running mechanics so significantly?
The aero position holds the hip flexors in sustained compression for hours at a time. Over the course of a long bike leg, the hip flexors progressively lose extensibility, and the posterior chain adapts to the shortened position it has been in. When the athlete transitions to running, the hip flexors must immediately lengthen to allow full hip extension in the drive phase, and the posterior chain must produce force through ranges it has not been accessing. When these structures cannot adapt quickly enough, the stride shortens, the pelvis tilts anteriorly, and the energy cost of running increases from the first step.

Should I do mobility work before or after triathlon training sessions?
Both, with different purposes depending on the session. Before running, mobility prepares the hip flexors, hamstrings, and ankles for the specific demands of the stride pattern, so your mechanics are available from the first step rather than developing through the first kilometer. Before a bike session, the focus shifts to hip flexor and posterior chain preparation for the aero position. Post-session mobility supports tissue homeostasis and helps restore the range of motion that sustained cycling or running positions have compressed. The purpose changes with the session, and the preparation should reflect that.

How long does it take to improve hip flexor extensibility for running?
Passive hip flexor flexibility changes can begin to occur within a few weeks of consistent practice through mechanisms such as viscoelastic relaxation and adaptations in stretch tolerance. However, the quality that transfers into running mechanics after the bike leg is active hip flexor extensibility under the dynamic load of the running stride, which requires the nervous system to allow and control that range while the hip is working against the momentum of each stride. This adaptation takes longer to develop. For most athletes, meaningful improvements in stride length and hip extension range off the bike are noticeable within 4 to 8 weeks of consistent, targeted work.

Can this routine help with running mechanics outside of triathlon?
Yes. The hip flexor extensibility, hamstring length, ankle dorsiflexion, and hip rotational control developed in this routine are foundational to efficient running mechanics in any context. Runners, HYROX athletes, and CrossFit competitors all place the same demands on these systems during running-based training and competition. The frontal plane hip control developed through the lateral leg swing and Cossack squat work also supports change of direction mechanics and single-leg stability in any sport that involves running. Improvements in these capacities support more efficient, lower-cost running mechanics across any training or competitive context.

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